Module added

Player Size:
Shortcuts:
Speed:
Subtitles:

Download Workbook

Up Next

Watch next

Energy Conservation And The Work Energy Theorem part a 0/5 completed

Energy Conservation And The Work Energy Theorem part b 0/3 completed

Work Done By A Constant Force 0/3 completed

Explanation About the Integral of Work 0/2 completed

How to Calculate the Integral of a non Constant Force 0/1 completed

Explanation and Formula

Deriving Work And Energy Equations 0/3 completed

Calculating Conservative Forces From Potential Energy 0/2 completed

How To Check If A Force Is Conservative 0/2 completed

Calculating Potential Energy From Conservative Forces 0/2 completed

Comments

{"Free":0,"Sample":1,"Paid":2}

[{"Name":"Energy Conservation And The Work Energy Theorem part a","TopicPlaylistFirstVideoID":0,"Duration":null,"Videos":[{"Watched":false,"Name":"Explanation","Duration":"3m 54s","ChapterTopicVideoID":9031,"CourseChapterTopicPlaylistID":5417,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:02.460","Text":"Hello. In this video,"},{"Start":"00:02.460 ","End":"00:07.080","Text":"we\u0027re going to talk about the Conservation of Energy and the Work Energy Theorem."},{"Start":"00:07.080 ","End":"00:08.460","Text":"This is really important."},{"Start":"00:08.460 ","End":"00:13.560","Text":"It can show us in principle how we really work with energy."},{"Start":"00:13.560 ","End":"00:17.415","Text":"Now I\u0027m going to do this a little differently from a pedagogical perspective."},{"Start":"00:17.415 ","End":"00:19.275","Text":"First, I want to show you the formula."},{"Start":"00:19.275 ","End":"00:23.880","Text":"Then later on in the second video for anyone who\u0027s interested and I really do suggest it."},{"Start":"00:23.880 ","End":"00:25.830","Text":"I\u0027ll show you where that formula comes from."},{"Start":"00:25.830 ","End":"00:29.835","Text":"It\u0027s not a very difficult development and I think it can really be a great enrichment,"},{"Start":"00:29.835 ","End":"00:32.040","Text":"but it will be in the second video."},{"Start":"00:32.040 ","End":"00:35.060","Text":"Keeping that in mind, it\u0027s as though we\u0027re starting from"},{"Start":"00:35.060 ","End":"00:38.375","Text":"the end and then we\u0027re going to move back towards the explanation."},{"Start":"00:38.375 ","End":"00:42.910","Text":"But putting the pedagogy aside for a second, let\u0027s get started."},{"Start":"00:42.910 ","End":"00:48.035","Text":"The first formula I want to introduce to you is the formula for kinetic energy."},{"Start":"00:48.035 ","End":"00:51.545","Text":"Kinetic energy is symbolized by E_k."},{"Start":"00:51.545 ","End":"00:57.780","Text":"It\u0027s a set formula which equals 1/2 MV^2."},{"Start":"00:58.090 ","End":"01:01.370","Text":"For now, we\u0027re going to treat this as a definition for"},{"Start":"01:01.370 ","End":"01:03.725","Text":"those who are interested later on in the second video,"},{"Start":"01:03.725 ","End":"01:06.125","Text":"I will explain where this formula comes from."},{"Start":"01:06.125 ","End":"01:09.230","Text":"But if you look at it, it\u0027s important to understand it as is also"},{"Start":"01:09.230 ","End":"01:12.335","Text":"its 1 1/2 the mass times the velocity squared."},{"Start":"01:12.335 ","End":"01:14.635","Text":"Now if we\u0027re squaring the velocity,"},{"Start":"01:14.635 ","End":"01:16.770","Text":"we\u0027re squaring a vector."},{"Start":"01:16.770 ","End":"01:18.275","Text":"If we square vector,"},{"Start":"01:18.275 ","End":"01:19.880","Text":"we get a scalar value."},{"Start":"01:19.880 ","End":"01:24.795","Text":"We get a value with no direction, only magnitude."},{"Start":"01:24.795 ","End":"01:28.430","Text":"Kinetic energy, as well as all other types of energy,"},{"Start":"01:28.430 ","End":"01:31.475","Text":"are always in terms of scalars."},{"Start":"01:31.475 ","End":"01:35.705","Text":"The second energy we\u0027re going to talk about is potential energy."},{"Start":"01:35.705 ","End":"01:38.510","Text":"We talked about in previous lectures."},{"Start":"01:38.510 ","End":"01:40.655","Text":"In the sense that it is also,"},{"Start":"01:40.655 ","End":"01:44.810","Text":"it is equivalent to the work that a certain force will be doing."},{"Start":"01:44.810 ","End":"01:49.805","Text":"It can be symbolized with U or with E_p sometimes as well."},{"Start":"01:49.805 ","End":"01:53.330","Text":"Depending on the force at work,"},{"Start":"01:53.330 ","End":"01:59.494","Text":"it can be equal to different set functions or set equations,"},{"Start":"01:59.494 ","End":"02:03.740","Text":"2 of the most common examples are the gravitational potential energy,"},{"Start":"02:03.740 ","End":"02:08.465","Text":"which is mgh, and the elastic potential energy,"},{"Start":"02:08.465 ","End":"02:12.040","Text":"which equals 1/2(k) delta x^2."},{"Start":"02:12.040 ","End":"02:15.050","Text":"In physics, 1 will almost exclusively use"},{"Start":"02:15.050 ","End":"02:19.370","Text":"the potential energy of gravity and the potential elastic energy in our problems."},{"Start":"02:19.370 ","End":"02:22.970","Text":"But there exists many other types of potential energy as well."},{"Start":"02:22.970 ","End":"02:28.070","Text":"The last energy I want to talk about is total energy or general energy."},{"Start":"02:28.070 ","End":"02:30.260","Text":"It\u0027s basically the sum of all of these energies."},{"Start":"02:30.260 ","End":"02:35.665","Text":"It\u0027s symbolized with E. It can also be called the mechanical energy."},{"Start":"02:35.665 ","End":"02:38.455","Text":"It equals E_k,"},{"Start":"02:38.455 ","End":"02:41.905","Text":"the kinetic energy, plus U the potential energy."},{"Start":"02:41.905 ","End":"02:45.460","Text":"Or more accurately, E_k plus all the"},{"Start":"02:45.460 ","End":"02:49.255","Text":"various types of U that we might have in a given problem."},{"Start":"02:49.255 ","End":"02:50.830","Text":"In 1 particular problem,"},{"Start":"02:50.830 ","End":"02:54.385","Text":"we will probably encounter gravitational potential energy."},{"Start":"02:54.385 ","End":"02:58.780","Text":"There will probably be an elastic potential energy in certain problems as well."},{"Start":"02:58.780 ","End":"03:03.805","Text":"There may be multiple other potential energy associated with the same problem."},{"Start":"03:03.805 ","End":"03:07.330","Text":"Our total energy equals our kinetic energy"},{"Start":"03:07.330 ","End":"03:11.810","Text":"plus all the different types of potential energy in the problem."},{"Start":"03:11.810 ","End":"03:14.665","Text":"When we\u0027re talking about our total energy,"},{"Start":"03:14.665 ","End":"03:17.885","Text":"which we can also call our total mechanical energy."},{"Start":"03:17.885 ","End":"03:20.600","Text":"We always have a constant kinetic energy,"},{"Start":"03:20.600 ","End":"03:22.850","Text":"which is always 1/2mv^2."},{"Start":"03:22.850 ","End":"03:28.590","Text":"We have multiple formulas depending on the different potential energies we\u0027re using."},{"Start":"03:29.030 ","End":"03:31.580","Text":"Our total energy, or again,"},{"Start":"03:31.580 ","End":"03:35.840","Text":"our total mechanical energy,"},{"Start":"03:35.840 ","End":"03:39.980","Text":"is going to be changing depending on what potential energies we\u0027re dealing with."},{"Start":"03:39.980 ","End":"03:42.980","Text":"Now, I want to give a deeper explanation."},{"Start":"03:42.980 ","End":"03:45.440","Text":"The next video for those who are interested."},{"Start":"03:45.440 ","End":"03:47.780","Text":"The larger question still remains,"},{"Start":"03:47.780 ","End":"03:49.145","Text":"how do we use these terms?"},{"Start":"03:49.145 ","End":"03:50.360","Text":"Or maybe more accurately,"},{"Start":"03:50.360 ","End":"03:54.690","Text":"how do we use these terms to solve problems in physics?"}],"ID":9304},{"Watched":false,"Name":"How to Approach the Exercises","Duration":"4m 44s","ChapterTopicVideoID":9032,"CourseChapterTopicPlaylistID":5417,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.050 ","End":"00:03.510","Text":"The first thing I want to do with every problem is"},{"Start":"00:03.510 ","End":"00:06.345","Text":"check if the energy is conserved in the problem."},{"Start":"00:06.345 ","End":"00:11.055","Text":"What does that mean? It means that all of your forces are conservative forces."},{"Start":"00:11.055 ","End":"00:14.235","Text":"If all of your forces are conservative forces,"},{"Start":"00:14.235 ","End":"00:16.080","Text":"what that means is you can solve your problems,"},{"Start":"00:16.080 ","End":"00:18.705","Text":"solve your exercise the way that we solved"},{"Start":"00:18.705 ","End":"00:21.870","Text":"the last exercise by finding the initial force,"},{"Start":"00:21.870 ","End":"00:24.720","Text":"finding the final force, and setting them equal."},{"Start":"00:24.720 ","End":"00:28.440","Text":"I want to take an opportunity to talk about a common mistake as well here."},{"Start":"00:28.440 ","End":"00:32.100","Text":"Some people think that if you have conservative forces,"},{"Start":"00:32.100 ","End":"00:35.700","Text":"it means you only have internal forces and no external forces."},{"Start":"00:35.700 ","End":"00:37.040","Text":"That is not true."},{"Start":"00:37.040 ","End":"00:39.210","Text":"That is absolutely untrue and it will get"},{"Start":"00:39.210 ","End":"00:41.895","Text":"you in a lot of trouble with some of these exercises."},{"Start":"00:41.895 ","End":"00:46.415","Text":"External forces are not related necessarily to the preservation of energy."},{"Start":"00:46.415 ","End":"00:47.900","Text":"They\u0027re related to momentum."},{"Start":"00:47.900 ","End":"00:50.765","Text":"In fact, you can have external forces that"},{"Start":"00:50.765 ","End":"00:54.380","Text":"are conservative forces that do preserve energy."},{"Start":"00:54.380 ","End":"00:57.080","Text":"Well, some of them don\u0027t, some of them still do."},{"Start":"00:57.080 ","End":"01:02.510","Text":"A conservative force does not mean an absence of external forces."},{"Start":"01:02.510 ","End":"01:06.155","Text":"This similar mistake can be made in the opposite way."},{"Start":"01:06.155 ","End":"01:10.535","Text":"You can also have internal forces that are not conservative forces."},{"Start":"01:10.535 ","End":"01:13.430","Text":"This is not a good measure by which to judge if you"},{"Start":"01:13.430 ","End":"01:16.180","Text":"have a problem with preservation of energy."},{"Start":"01:16.180 ","End":"01:17.975","Text":"Let\u0027s return to our method."},{"Start":"01:17.975 ","End":"01:21.035","Text":"We need to check if we have conservative forces."},{"Start":"01:21.035 ","End":"01:23.795","Text":"The easiest way to check if we have conservative forces"},{"Start":"01:23.795 ","End":"01:27.155","Text":"is to see if a given forest has potential energy."},{"Start":"01:27.155 ","End":"01:34.490","Text":"A couple of examples here above are the potential energy of gravity,"},{"Start":"01:34.490 ","End":"01:37.265","Text":"U_g, something can fall,"},{"Start":"01:37.265 ","End":"01:41.060","Text":"or the potential energy that\u0027s elastic potential energy that of a spring,"},{"Start":"01:41.060 ","End":"01:43.565","Text":"because a spring can always spring back."},{"Start":"01:43.565 ","End":"01:46.400","Text":"If you have that potential energy in it,"},{"Start":"01:46.400 ","End":"01:50.395","Text":"your energy is inherently a conservative force."},{"Start":"01:50.395 ","End":"01:55.295","Text":"Now, there are 2 other ways that I can check if I have a conservative force."},{"Start":"01:55.295 ","End":"01:57.110","Text":"The first is the rotor."},{"Start":"01:57.110 ","End":"01:58.190","Text":"We talked about that earlier,"},{"Start":"01:58.190 ","End":"02:00.425","Text":"so I\u0027m not going to get into that too much here."},{"Start":"02:00.425 ","End":"02:07.670","Text":"The second is if we have a force whose net work done is 0,"},{"Start":"02:07.670 ","End":"02:10.010","Text":"then it is also a conservative force."},{"Start":"02:10.010 ","End":"02:12.830","Text":"That means that in going from point A to point B,"},{"Start":"02:12.830 ","End":"02:15.605","Text":"if the work done equals 0,"},{"Start":"02:15.605 ","End":"02:18.980","Text":"then you have a conservative force."},{"Start":"02:18.980 ","End":"02:24.440","Text":"Let\u0027s assume for a second that we have a problem that has conservation of energy."},{"Start":"02:24.440 ","End":"02:27.440","Text":"We\u0027ve checked all of our forces and they\u0027re all conservative forces."},{"Start":"02:27.440 ","End":"02:28.610","Text":"Let\u0027s say for this example,"},{"Start":"02:28.610 ","End":"02:31.175","Text":"we\u0027re using the force of gravity and the force of a spring."},{"Start":"02:31.175 ","End":"02:34.130","Text":"We can then check the box that says that we have conservation of"},{"Start":"02:34.130 ","End":"02:37.790","Text":"energy because we\u0027re dealing with only potential energy in this case."},{"Start":"02:37.790 ","End":"02:39.220","Text":"We move on to our next step."},{"Start":"02:39.220 ","End":"02:42.290","Text":"Now, our next step is we can set our energies equal to each other."},{"Start":"02:42.290 ","End":"02:43.540","Text":"What do I mean by that?"},{"Start":"02:43.540 ","End":"02:46.220","Text":"We can look at our final moment and"},{"Start":"02:46.220 ","End":"02:49.930","Text":"our initial moment in the particular time we\u0027re looking at and set them equal."},{"Start":"02:49.930 ","End":"02:54.845","Text":"Our initial moment, the beginning of the problem is E_i, initial energy."},{"Start":"02:54.845 ","End":"02:58.945","Text":"Our last moment is final energy E_f."},{"Start":"02:58.945 ","End":"03:03.875","Text":"We know that when we\u0027re trying to find the value of the initial energy,"},{"Start":"03:03.875 ","End":"03:07.220","Text":"we can set it equal to the kinetic energy plus the potential energy,"},{"Start":"03:07.220 ","End":"03:13.490","Text":"that\u0027s 1.5mv squared plus whatever the potential energies might be in a given problem."},{"Start":"03:13.490 ","End":"03:16.985","Text":"Then I can take my final energy E_f."},{"Start":"03:16.985 ","End":"03:21.380","Text":"Again, I set that equal to the kinetic energy 1.5mv"},{"Start":"03:21.380 ","End":"03:25.745","Text":"squared plus whatever our potential energy may be at that moment."},{"Start":"03:25.745 ","End":"03:27.895","Text":"Again, it depends on the problem."},{"Start":"03:27.895 ","End":"03:30.720","Text":"Now, when I say I\u0027m setting the 2 equal,"},{"Start":"03:30.720 ","End":"03:35.385","Text":"it literally means that I take an equation where E_i=E_f."},{"Start":"03:35.385 ","End":"03:37.230","Text":"This is the beauty with energy."},{"Start":"03:37.230 ","End":"03:41.285","Text":"If you don\u0027t really care what happened between point E_i and point E_f,"},{"Start":"03:41.285 ","End":"03:43.625","Text":"because as long as there\u0027s conservation of energy,"},{"Start":"03:43.625 ","End":"03:44.930","Text":"we can know that they\u0027re equal."},{"Start":"03:44.930 ","End":"03:50.225","Text":"This makes our job a lot easier because we don\u0027t really care how it got from E_I to E_f."},{"Start":"03:50.225 ","End":"03:54.185","Text":"It could have been a very simple trajectory or very complicated 1 that\u0027s hard to grasp."},{"Start":"03:54.185 ","End":"03:57.820","Text":"What we really care about is those 2 points."},{"Start":"03:57.820 ","End":"04:00.105","Text":"Then we set the 2 equal."},{"Start":"04:00.105 ","End":"04:01.965","Text":"When we subtract things out,"},{"Start":"04:01.965 ","End":"04:05.150","Text":"what we\u0027ll usually get is either are answered directly or"},{"Start":"04:05.150 ","End":"04:11.035","Text":"some data point or value that will solve the problem for us."},{"Start":"04:11.035 ","End":"04:13.965","Text":"To remind you what this looks like,"},{"Start":"04:13.965 ","End":"04:17.885","Text":"E_i breaks down into the initial kinetic energy and initial potential energy,"},{"Start":"04:17.885 ","End":"04:20.650","Text":"which is 1.5mvi squared,"},{"Start":"04:20.650 ","End":"04:22.900","Text":"the initial velocity plus U_i,"},{"Start":"04:22.900 ","End":"04:25.255","Text":"the initial potential energy."},{"Start":"04:25.255 ","End":"04:27.585","Text":"E_f breaks down the same way."},{"Start":"04:27.585 ","End":"04:31.010","Text":"It\u0027s equal to 1.5mvf squared,"},{"Start":"04:31.010 ","End":"04:34.040","Text":"the final velocity, plus U_f,"},{"Start":"04:34.040 ","End":"04:36.380","Text":"whatever the potential energy may be there."},{"Start":"04:36.380 ","End":"04:40.190","Text":"Let\u0027s look at an example like this where we have conservation of energy."},{"Start":"04:40.190 ","End":"04:44.340","Text":"Then we\u0027ll see what happens if we don\u0027t have conservation of energy."}],"ID":9305},{"Watched":false,"Name":"Exercise- One Mass on a Slope Tied to Another Mass Hanging Vertically","Duration":"11m 7s","ChapterTopicVideoID":9035,"CourseChapterTopicPlaylistID":5417,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:02.430","Text":"Hello. In this exercise,"},{"Start":"00:02.430 ","End":"00:05.610","Text":"we\u0027re dealing with a pretty special system and it has a lot of elements."},{"Start":"00:05.610 ","End":"00:08.340","Text":"The first thing we should do is run through those elements."},{"Start":"00:08.340 ","End":"00:10.320","Text":"First, we have the mass m_1."},{"Start":"00:10.320 ","End":"00:14.970","Text":"M_1 is sitting on an incline with an angle of Theta and while it\u0027s on that incline,"},{"Start":"00:14.970 ","End":"00:18.030","Text":"it rests on a spring and the spring constant is k,"},{"Start":"00:18.030 ","End":"00:21.870","Text":"and the spring is compressed to a distance of d."},{"Start":"00:21.870 ","End":"00:27.555","Text":"This mass is then attached to a rope or a string that runs through an ideal pulley,"},{"Start":"00:27.555 ","End":"00:29.940","Text":"meaning we don\u0027t have to worry about friction and on"},{"Start":"00:29.940 ","End":"00:33.030","Text":"the other side of the string it\u0027s connected to a mass m_2."},{"Start":"00:33.030 ","End":"00:38.175","Text":"Now, this mass m_2 is at a height H above the ground."},{"Start":"00:38.175 ","End":"00:43.685","Text":"The question asks, once we release this system from a resting position,"},{"Start":"00:43.685 ","End":"00:47.915","Text":"at what velocity will the mass m_2 hit the ground?"},{"Start":"00:47.915 ","End":"00:50.390","Text":"There are also some given values at"},{"Start":"00:50.390 ","End":"00:53.945","Text":"the end of the problem that will be incorporated later."},{"Start":"00:53.945 ","End":"00:57.040","Text":"For now, it\u0027s time to solve this problem."},{"Start":"00:57.040 ","End":"01:01.235","Text":"The first thing to notice is that m_1 is lighter than m_2."},{"Start":"01:01.235 ","End":"01:05.545","Text":"That way we know that m_2 is in fact going to fall and m_1 is going to rise."},{"Start":"01:05.545 ","End":"01:07.875","Text":"Now, what I need to do is,"},{"Start":"01:07.875 ","End":"01:10.190","Text":"if I want to look at this problem,"},{"Start":"01:10.190 ","End":"01:12.020","Text":"I first need to see if I\u0027ve conservation of"},{"Start":"01:12.020 ","End":"01:15.335","Text":"energy and the way I need to do that is look at all my forces."},{"Start":"01:15.335 ","End":"01:17.360","Text":"What forces do we have in the problem?"},{"Start":"01:17.360 ","End":"01:19.145","Text":"First of all, we have mg,"},{"Start":"01:19.145 ","End":"01:20.690","Text":"the force of gravity."},{"Start":"01:20.690 ","End":"01:23.180","Text":"We know that the force of gravity is"},{"Start":"01:23.180 ","End":"01:27.760","Text":"a conservative force so we can put a checkmark next to that."},{"Start":"01:27.760 ","End":"01:31.225","Text":"Secondly, we have the F_k,"},{"Start":"01:31.225 ","End":"01:34.280","Text":"we\u0027ll call it the force of the spring,"},{"Start":"01:34.280 ","End":"01:36.335","Text":"and we know that, that is a conservative force."},{"Start":"01:36.335 ","End":"01:37.790","Text":"We also have the normal force."},{"Start":"01:37.790 ","End":"01:42.200","Text":"This is the force going perpendicular to the object m_1, in this case."},{"Start":"01:42.200 ","End":"01:47.300","Text":"We know from the past that m_1 is a conservative force because it\u0027s work equals 0,"},{"Start":"01:47.300 ","End":"01:49.055","Text":"the sum work is 0."},{"Start":"01:49.055 ","End":"01:52.685","Text":"Another force that needs to be addressed is T, the tension."},{"Start":"01:52.685 ","End":"01:56.465","Text":"We can\u0027t immediately discern whether it\u0027s a conservative force or not,"},{"Start":"01:56.465 ","End":"01:57.740","Text":"but you\u0027ll see that it is,"},{"Start":"01:57.740 ","End":"01:59.590","Text":"in a second, I\u0027ll explain why."},{"Start":"01:59.590 ","End":"02:03.675","Text":"Ultimately, the work done by T=0."},{"Start":"02:03.675 ","End":"02:05.815","Text":"What\u0027s the reason for this?"},{"Start":"02:05.815 ","End":"02:09.350","Text":"T is the tension on our ideal string holding mass"},{"Start":"02:09.350 ","End":"02:12.730","Text":"1 to mass 2 and going through an ideal pulley."},{"Start":"02:12.730 ","End":"02:17.150","Text":"We know on some basic level that we\u0027re going to have a T over m_2"},{"Start":"02:17.150 ","End":"02:21.455","Text":"and it\u0027s going to be the exact same going upwards as the T on m_1,"},{"Start":"02:21.455 ","End":"02:24.205","Text":"also going upwards towards the pulley."},{"Start":"02:24.205 ","End":"02:27.200","Text":"We know that it\u0027s the same tension operating on"},{"Start":"02:27.200 ","End":"02:30.260","Text":"positive on one side and a negative on the other side."},{"Start":"02:30.260 ","End":"02:32.345","Text":"We can show this mathematically."},{"Start":"02:32.345 ","End":"02:33.890","Text":"W_T of 1,"},{"Start":"02:33.890 ","End":"02:39.160","Text":"the work of T on m_1 is the integral of F or T.dr."},{"Start":"02:39.160 ","End":"02:41.280","Text":"We can say that on m_1,"},{"Start":"02:41.280 ","End":"02:45.240","Text":"it\u0027s going in a positive direction and for m_2 it\u0027s going in a negative direction."},{"Start":"02:45.240 ","End":"02:47.875","Text":"Basically, the displacement is the same,"},{"Start":"02:47.875 ","End":"02:50.740","Text":"but the angle of m_1 would equal 0 degrees,"},{"Start":"02:50.740 ","End":"02:54.205","Text":"the angle of m2 180 degrees, they\u0027re exact opposites."},{"Start":"02:54.205 ","End":"02:57.085","Text":"W_T1 equals negative W_T2,"},{"Start":"02:57.085 ","End":"03:00.160","Text":"and therefore the total work of T,"},{"Start":"03:00.160 ","End":"03:01.885","Text":"the tension equals 0."},{"Start":"03:01.885 ","End":"03:05.020","Text":"You could say, it\u0027s only bringing energy between m_1 and"},{"Start":"03:05.020 ","End":"03:09.850","Text":"m_2 and not affecting the overall energy of the general system."},{"Start":"03:09.850 ","End":"03:13.870","Text":"On a test, you won\u0027t generally need to be as detailed"},{"Start":"03:13.870 ","End":"03:17.665","Text":"and to explain in such depth how T is working."},{"Start":"03:17.665 ","End":"03:21.830","Text":"We can say that, T is a conservative force and move on."},{"Start":"03:21.830 ","End":"03:26.410","Text":"What we can see here is that in our system we do have a conservation of energy,"},{"Start":"03:26.410 ","End":"03:28.355","Text":"all the forces are conservative."},{"Start":"03:28.355 ","End":"03:30.010","Text":"Now, that I have this understanding,"},{"Start":"03:30.010 ","End":"03:32.530","Text":"I can move on to actually solving the problem."},{"Start":"03:32.530 ","End":"03:34.255","Text":"How are you going to solve the problem?"},{"Start":"03:34.255 ","End":"03:35.665","Text":"Like we\u0027ve discussed before,"},{"Start":"03:35.665 ","End":"03:36.955","Text":"you want to set your equation."},{"Start":"03:36.955 ","End":"03:38.870","Text":"First, you need to find your initial energy,"},{"Start":"03:38.870 ","End":"03:43.285","Text":"then you find your final energy and then you\u0027ll set your equation,"},{"Start":"03:43.285 ","End":"03:46.720","Text":"setting the initial energy equal to the final energy."},{"Start":"03:46.720 ","End":"03:49.660","Text":"Now, we can start writing out or energy equations."},{"Start":"03:49.660 ","End":"03:51.820","Text":"If you recall, an energy equation is"},{"Start":"03:51.820 ","End":"03:55.120","Text":"kinetic energy plus all the different potential energies."},{"Start":"03:55.120 ","End":"03:58.195","Text":"In our case, we have gravity and we have elastic potential energy,"},{"Start":"03:58.195 ","End":"04:00.145","Text":"the potential energy of a spring."},{"Start":"04:00.145 ","End":"04:02.125","Text":"For our initial energy,"},{"Start":"04:02.125 ","End":"04:04.020","Text":"first, for the kinetic portion,"},{"Start":"04:04.020 ","End":"04:11.330","Text":"we have 1/2(m_1 v_1^2) plus 1/2(m_2 v_2^2)."},{"Start":"04:11.330 ","End":"04:15.290","Text":"Each object mass 1 and mass 2 needs its own kinetic energy."},{"Start":"04:15.290 ","End":"04:17.075","Text":"They have their own kinetic energy."},{"Start":"04:17.075 ","End":"04:19.700","Text":"Now, it just so happens that at the first moment,"},{"Start":"04:19.700 ","End":"04:22.190","Text":"both of these equal 0 because the velocity on"},{"Start":"04:22.190 ","End":"04:25.120","Text":"each object as we release them from rest is 0."},{"Start":"04:25.120 ","End":"04:27.830","Text":"Now, we can add gravity to the equation."},{"Start":"04:27.830 ","End":"04:31.009","Text":"Again, we need to split this into 2 different masses."},{"Start":"04:31.009 ","End":"04:32.705","Text":"We\u0027ll have for mass 1,"},{"Start":"04:32.705 ","End":"04:38.100","Text":"m_1 gh_1, and for mass 2, m_2 gh_2."},{"Start":"04:38.100 ","End":"04:43.220","Text":"We have to set our h=0 height for each object and we can do this separately."},{"Start":"04:43.220 ","End":"04:44.705","Text":"There can be 2 different points."},{"Start":"04:44.705 ","End":"04:50.945","Text":"For m_1, we get set h0 as some line that goes through the middle of the mass,"},{"Start":"04:50.945 ","End":"04:54.095","Text":"that can be h0 for our first mass."},{"Start":"04:54.095 ","End":"04:56.225","Text":"Form_2, we could set h0,"},{"Start":"04:56.225 ","End":"04:57.590","Text":"we can set it at the boundary object,"},{"Start":"04:57.590 ","End":"05:00.005","Text":"but it\u0027s easier for us to set it at the ground,"},{"Start":"05:00.005 ","End":"05:03.450","Text":"capital H below the mass m2."},{"Start":"05:03.460 ","End":"05:06.275","Text":"Just to reiterate, because it can be confusing,"},{"Start":"05:06.275 ","End":"05:10.010","Text":"we\u0027ve set 2 different initial heights, 2 different h0s."},{"Start":"05:10.010 ","End":"05:11.525","Text":"For mass 1, we have 1,"},{"Start":"05:11.525 ","End":"05:14.080","Text":"for mass 2, we have a different one and this is okay."},{"Start":"05:14.080 ","End":"05:15.690","Text":"Now, for mass 1,"},{"Start":"05:15.690 ","End":"05:17.694","Text":"if we look at our equation,"},{"Start":"05:17.694 ","End":"05:22.265","Text":"the height at the initial moment is 0 so therefore,"},{"Start":"05:22.265 ","End":"05:25.745","Text":"the potential energy of gravity will fall away."},{"Start":"05:25.745 ","End":"05:28.045","Text":"For mass 2,"},{"Start":"05:28.045 ","End":"05:32.570","Text":"we can see that the height at the initial moment is in fact"},{"Start":"05:32.570 ","End":"05:37.475","Text":"large H above the ground so we can replace h_2 with the variable"},{"Start":"05:37.475 ","End":"05:41.750","Text":"large H. I can put a checkmark above"},{"Start":"05:41.750 ","End":"05:46.940","Text":"the potential energy of gravity and move on to the potential energy of the spring."},{"Start":"05:46.940 ","End":"05:51.285","Text":"Now this, I can write it as 1/2(k) times Delta x^2."},{"Start":"05:51.285 ","End":"05:53.070","Text":"In this case, Delta x is d,"},{"Start":"05:53.070 ","End":"05:55.815","Text":"so we write 1/2(k) d^2."},{"Start":"05:55.815 ","End":"05:58.265","Text":"Now, I have my initial energy."},{"Start":"05:58.265 ","End":"06:00.170","Text":"For now, I\u0027m not going to put in the numbers,"},{"Start":"06:00.170 ","End":"06:02.440","Text":"we\u0027ll incorporate those later."},{"Start":"06:02.440 ","End":"06:07.160","Text":"Now, we can move on to the final energy and before writing this out,"},{"Start":"06:07.160 ","End":"06:13.700","Text":"I want to note that because h=3 meters and d=30 centimeters,"},{"Start":"06:13.700 ","End":"06:20.110","Text":"we can assume that the spring will be fully extended at the final moment in the problem."},{"Start":"06:20.110 ","End":"06:21.620","Text":"That\u0027s something to keep in mind,"},{"Start":"06:21.620 ","End":"06:23.615","Text":"but that\u0027s jumping ahead a little bit."},{"Start":"06:23.615 ","End":"06:26.165","Text":"To start back again in an organized way,"},{"Start":"06:26.165 ","End":"06:28.100","Text":"let\u0027s look at the kinetic energy first,"},{"Start":"06:28.100 ","End":"06:29.950","Text":"looking at the velocities of each mass."},{"Start":"06:29.950 ","End":"06:32.615","Text":"Again, we have to separate between the 2 masses,"},{"Start":"06:32.615 ","End":"06:35.215","Text":"each might have its own velocity."},{"Start":"06:35.215 ","End":"06:40.260","Text":"For the first mass, it\u0027s 1/2m_1 v_1^2,"},{"Start":"06:40.260 ","End":"06:41.625","Text":"and for the second object,"},{"Start":"06:41.625 ","End":"06:48.150","Text":"m_2, it\u0027s 1/2m_2 v_2^2 and this is what we\u0027re trying to find."},{"Start":"06:48.150 ","End":"06:52.685","Text":"Now, at this stage, I can also say that, v_1=v_2."},{"Start":"06:52.685 ","End":"06:54.875","Text":"Because they\u0027re connected by the string,"},{"Start":"06:54.875 ","End":"06:57.020","Text":"whatever distance m_2 moves,"},{"Start":"06:57.020 ","End":"07:01.500","Text":"m_1 has to move the identical distance and an identical amount of time."},{"Start":"07:01.660 ","End":"07:05.690","Text":"Now, we can move on to potential energy."},{"Start":"07:05.690 ","End":"07:09.830","Text":"We need to add in first the potential energy of gravity."},{"Start":"07:09.830 ","End":"07:16.750","Text":"We\u0027re going to use the same formula as before, m_1gh_1 and m_2gh_2."},{"Start":"07:16.750 ","End":"07:18.890","Text":"Now, we have to figure out what those hs are."},{"Start":"07:18.890 ","End":"07:20.180","Text":"For the second mass,"},{"Start":"07:20.180 ","End":"07:24.965","Text":"we know that h_2=0 because the object is on the ground."},{"Start":"07:24.965 ","End":"07:27.215","Text":"We can take that and bring it to 0."},{"Start":"07:27.215 ","End":"07:31.295","Text":"For h_1, we need to figure that out and we will calculate it."},{"Start":"07:31.295 ","End":"07:33.020","Text":"But first, I want to say that,"},{"Start":"07:33.020 ","End":"07:37.835","Text":"the elastic potential energy is 0 because we know that our spring is fully extended,"},{"Start":"07:37.835 ","End":"07:40.240","Text":"the spring has no potential energy."},{"Start":"07:40.240 ","End":"07:42.890","Text":"Because Delta x=0,"},{"Start":"07:42.890 ","End":"07:45.880","Text":"our spring has no potential energy."},{"Start":"07:45.880 ","End":"07:48.965","Text":"Now, let\u0027s move on to calculating h_1."},{"Start":"07:48.965 ","End":"07:52.325","Text":"Again, h_1 is the height that mass 1 is"},{"Start":"07:52.325 ","End":"07:55.925","Text":"above the h=0 baseline at the end of the equation."},{"Start":"07:55.925 ","End":"07:58.010","Text":"First, let\u0027s move these 2 objects that it looks"},{"Start":"07:58.010 ","End":"08:00.380","Text":"like it would at the end of this exercise."},{"Start":"08:00.380 ","End":"08:04.550","Text":"Remember, we\u0027re talking about the moment just before m_2 hits the ground."},{"Start":"08:04.550 ","End":"08:06.890","Text":"We can imagine it that way so we don\u0027t have to deal with"},{"Start":"08:06.890 ","End":"08:10.835","Text":"the forces that come into play once m2 hits the ground."},{"Start":"08:10.835 ","End":"08:13.250","Text":"Assuming we\u0027re dealing with that moment,"},{"Start":"08:13.250 ","End":"08:18.140","Text":"and we know that our mass m_1 has moved the same distance as m_2,"},{"Start":"08:18.140 ","End":"08:19.520","Text":"but instead of moving H,"},{"Start":"08:19.520 ","End":"08:21.425","Text":"large H, vertically,"},{"Start":"08:21.425 ","End":"08:24.590","Text":"it\u0027s moved the same distance large H on a diagonal line,"},{"Start":"08:24.590 ","End":"08:30.170","Text":"a diagonal line that\u0027s specifically parallel to the slope on which mass 1 rests."},{"Start":"08:30.170 ","End":"08:34.160","Text":"We know that we can use this baseline h=0 as"},{"Start":"08:34.160 ","End":"08:39.020","Text":"the starting point and we\u0027re trying to find this vertical line which is parallel to h=0,"},{"Start":"08:39.020 ","End":"08:41.120","Text":"which is the height that m_1 is moved."},{"Start":"08:41.120 ","End":"08:44.120","Text":"We can call this h_1 because that\u0027s what we\u0027re trying to find."},{"Start":"08:44.120 ","End":"08:46.880","Text":"Now, we know that this triangle large H,"},{"Start":"08:46.880 ","End":"08:49.970","Text":"h_1 in the baseline has an angle of Theta"},{"Start":"08:49.970 ","End":"08:53.435","Text":"because it\u0027s parallel to the triangle made by the slope,"},{"Start":"08:53.435 ","End":"08:56.330","Text":"the vertical line, and the base of our initial set."},{"Start":"08:56.330 ","End":"08:59.465","Text":"Therefore, using some basic trigonometry,"},{"Start":"08:59.465 ","End":"09:02.435","Text":"I can replace our variable h_1,"},{"Start":"09:02.435 ","End":"09:05.805","Text":"with large H times the sine of Theta."},{"Start":"09:05.805 ","End":"09:07.700","Text":"When I clean up this equation,"},{"Start":"09:07.700 ","End":"09:14.135","Text":"I\u0027ll replace h_1 with large H sine Theta. Let\u0027s do that."},{"Start":"09:14.135 ","End":"09:16.910","Text":"Let\u0027s first write out our final energy."},{"Start":"09:16.910 ","End":"09:20.345","Text":"We have what\u0027s left is 1/2, and we can say,"},{"Start":"09:20.345 ","End":"09:23.870","Text":"m_1 plus v_1 in parentheses times"},{"Start":"09:23.870 ","End":"09:28.370","Text":"v^2 because it\u0027s the same v and we also add on to that what we found,"},{"Start":"09:28.370 ","End":"09:32.075","Text":"m_1 g large H sine Theta,"},{"Start":"09:32.075 ","End":"09:35.485","Text":"and everything else from the final energy drops off."},{"Start":"09:35.485 ","End":"09:38.255","Text":"Now, we can set this equal to our initial energy,"},{"Start":"09:38.255 ","End":"09:40.475","Text":"which looking above, you\u0027ll recall,"},{"Start":"09:40.475 ","End":"09:45.340","Text":"equals m_2 g large H"},{"Start":"09:45.340 ","End":"09:52.804","Text":"plus the elastic energy of the spring, which is 1/2kd^2."},{"Start":"09:52.804 ","End":"09:55.540","Text":"Now, all that\u0027s left is to incorporate"},{"Start":"09:55.540 ","End":"09:59.590","Text":"the given values and solve for v, the missing variable."},{"Start":"09:59.590 ","End":"10:05.250","Text":"Let\u0027s get started, 1/2 of 1 kilogram plus 2 kilograms,"},{"Start":"10:05.250 ","End":"10:07.930","Text":"that\u0027s 3 kilograms times v^2,"},{"Start":"10:07.930 ","End":"10:12.250","Text":"which is what we\u0027re looking for plus 1 kilogram times"},{"Start":"10:12.250 ","End":"10:17.230","Text":"10 times 3 meters and the sine of Theta 30 degrees is"},{"Start":"10:17.230 ","End":"10:22.020","Text":"1/2 equals 2 kilograms times"},{"Start":"10:22.020 ","End":"10:27.720","Text":"10 times 3 meters plus 1/2 k is 100 newtons per meter,"},{"Start":"10:27.720 ","End":"10:30.180","Text":"and d is 30 centimeters."},{"Start":"10:30.180 ","End":"10:33.020","Text":"Now, if you\u0027ll notice, we\u0027ve been working in meters, meters, kilograms,"},{"Start":"10:33.020 ","End":"10:35.675","Text":"and seconds so instead of writing 30,"},{"Start":"10:35.675 ","End":"10:37.580","Text":"d is actually 30 centimeters,"},{"Start":"10:37.580 ","End":"10:41.390","Text":"which is not 30 meters, it\u0027s 0.3 meters."},{"Start":"10:41.390 ","End":"10:42.710","Text":"When we put this in the problem,"},{"Start":"10:42.710 ","End":"10:48.035","Text":"we have to write d as 0.3^3 and when we solve this,"},{"Start":"10:48.035 ","End":"10:50.205","Text":"and we\u0027re looking for v, again,"},{"Start":"10:50.205 ","End":"11:00.690","Text":"we end up with v equaling 5.745 meters per second."},{"Start":"11:00.690 ","End":"11:04.500","Text":"Now, we found the solution to the exercise."}],"ID":9308},{"Watched":false,"Name":"Example - Conservation of Energy","Duration":"5m 38s","ChapterTopicVideoID":12198,"CourseChapterTopicPlaylistID":5417,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:01.935","Text":"Now we have this example."},{"Start":"00:01.935 ","End":"00:04.380","Text":"If this example is too simple for you,"},{"Start":"00:04.380 ","End":"00:07.035","Text":"feel free to move on and do other exercises."},{"Start":"00:07.035 ","End":"00:08.850","Text":"In this exercise though,"},{"Start":"00:08.850 ","End":"00:16.815","Text":"we have a cart that is moving on a frictionless plane and it is above a slope."},{"Start":"00:16.815 ","End":"00:20.040","Text":"The cart is going to go down a slope with the height H,"},{"Start":"00:20.040 ","End":"00:24.780","Text":"and it has an initial velocity given as u_0."},{"Start":"00:24.780 ","End":"00:26.850","Text":"Now the question asked here is,"},{"Start":"00:26.850 ","End":"00:29.100","Text":"what is going to be the final velocity of"},{"Start":"00:29.100 ","End":"00:31.950","Text":"this cart once it reaches the bottom of the slope?"},{"Start":"00:31.950 ","End":"00:35.240","Text":"Let\u0027s run through how we can solve this problem by breaking"},{"Start":"00:35.240 ","End":"00:38.885","Text":"down our energy into its different components and solving them in order."},{"Start":"00:38.885 ","End":"00:41.270","Text":"The first thing we\u0027re gonna do is check if we have"},{"Start":"00:41.270 ","End":"00:43.415","Text":"a conservation of energy, and how do we do that?"},{"Start":"00:43.415 ","End":"00:46.790","Text":"We check if each force is conserved by"},{"Start":"00:46.790 ","End":"00:51.505","Text":"checking whether it has potential energy or whether it\u0027s work equal 0."},{"Start":"00:51.505 ","End":"00:53.445","Text":"Let\u0027s return to our problem."},{"Start":"00:53.445 ","End":"00:55.235","Text":"We have 2 forces we\u0027re dealing with."},{"Start":"00:55.235 ","End":"00:57.860","Text":"We have the force of gravity and the normal force."},{"Start":"00:57.860 ","End":"01:01.850","Text":"Now we know that gravity is a conservative force."},{"Start":"01:01.850 ","End":"01:04.130","Text":"We can already check that off the list."},{"Start":"01:04.130 ","End":"01:06.230","Text":"For the normal force, we have to check."},{"Start":"01:06.230 ","End":"01:10.160","Text":"Now we know that the normal force is going to be perpendicular or"},{"Start":"01:10.160 ","End":"01:14.440","Text":"orthogonal to the path of the cart at any given point."},{"Start":"01:14.440 ","End":"01:16.325","Text":"At the top, it\u0027ll be something like this."},{"Start":"01:16.325 ","End":"01:17.720","Text":"As the cart goes down the slope,"},{"Start":"01:17.720 ","End":"01:20.810","Text":"it\u0027ll be pointing outwards at something akin to a 45-degree angle."},{"Start":"01:20.810 ","End":"01:23.030","Text":"At the bottom it will again be 90 degrees."},{"Start":"01:23.030 ","End":"01:25.970","Text":"Now if we\u0027re calculating the work of a force that is"},{"Start":"01:25.970 ","End":"01:29.405","Text":"perpendicular to our general direction of motion,"},{"Start":"01:29.405 ","End":"01:31.865","Text":"remember that\u0027s the integral of f.dr,"},{"Start":"01:31.865 ","End":"01:34.910","Text":"the scalar multiplication will equal 0."},{"Start":"01:34.910 ","End":"01:37.770","Text":"This is dr is going forward at all times,"},{"Start":"01:37.770 ","End":"01:40.855","Text":"and what we\u0027re trying to measure is going perpendicular to that."},{"Start":"01:40.855 ","End":"01:45.905","Text":"A good rule of thumb is that the work of perpendicular force is always equals 0,"},{"Start":"01:45.905 ","End":"01:47.435","Text":"in this case is no exception."},{"Start":"01:47.435 ","End":"01:50.705","Text":"There are times when the normal force does perform work."},{"Start":"01:50.705 ","End":"01:52.070","Text":"In this case it does not,"},{"Start":"01:52.070 ","End":"01:55.940","Text":"so it can be considered another force that is conserving."},{"Start":"01:55.940 ","End":"02:00.290","Text":"This is great news for us because it means we have 2 conservative forces,"},{"Start":"02:00.290 ","End":"02:02.105","Text":"so we can move forward with our problem."},{"Start":"02:02.105 ","End":"02:03.965","Text":"Now if we look at our sheet,"},{"Start":"02:03.965 ","End":"02:07.550","Text":"what we\u0027ll find is that our next step is to find"},{"Start":"02:07.550 ","End":"02:12.200","Text":"the initial energy and find the final energy and set them equal to each other."},{"Start":"02:12.200 ","End":"02:13.715","Text":"So let\u0027s start with that."},{"Start":"02:13.715 ","End":"02:15.890","Text":"First, we\u0027re going to find our initial energy."},{"Start":"02:15.890 ","End":"02:17.225","Text":"What\u0027s our initial energy?"},{"Start":"02:17.225 ","End":"02:20.720","Text":"Well, as always, it\u0027s a kinetic energy plus a potential energy."},{"Start":"02:20.720 ","End":"02:23.360","Text":"Our kinetic energy is always written the same,"},{"Start":"02:23.360 ","End":"02:28.400","Text":"it is 1/2 mv^2."},{"Start":"02:28.400 ","End":"02:30.680","Text":"Remember this is our kinetic energy, E_k."},{"Start":"02:30.680 ","End":"02:35.360","Text":"In this case our potential energy is going to be gravitational,"},{"Start":"02:35.360 ","End":"02:37.400","Text":"so it\u0027s going to be mgh,"},{"Start":"02:37.400 ","End":"02:38.795","Text":"and this is our potential energy."},{"Start":"02:38.795 ","End":"02:44.720","Text":"Remember, our total energy is always going to be kinetic energy plus potential energy."},{"Start":"02:44.720 ","End":"02:46.250","Text":"In this particular problem,"},{"Start":"02:46.250 ","End":"02:48.259","Text":"our potential energy is only gravitational."},{"Start":"02:48.259 ","End":"02:51.620","Text":"Well, of course, we could have other potential energies in other problems."},{"Start":"02:51.620 ","End":"02:54.650","Text":"Now to finish filling this in for this specific problem,"},{"Start":"02:54.650 ","End":"02:58.010","Text":"we can replace v with u_0 and"},{"Start":"02:58.010 ","End":"03:02.210","Text":"small h with large H. These are the given variables in our problem."},{"Start":"03:02.210 ","End":"03:05.335","Text":"Now we can find our final energy."},{"Start":"03:05.335 ","End":"03:08.010","Text":"Once we find that, we can set the 2 equal."},{"Start":"03:08.010 ","End":"03:10.895","Text":"Our final energy, we\u0027re only going to have kinetic energy."},{"Start":"03:10.895 ","End":"03:16.160","Text":"That\u0027ll be 1/2 mv final as opposed to v initial squared,"},{"Start":"03:16.160 ","End":"03:18.365","Text":"and our potential energy will be 0."},{"Start":"03:18.365 ","End":"03:22.020","Text":"Now vf, v final is the variable we\u0027re looking for."},{"Start":"03:22.020 ","End":"03:26.030","Text":"We\u0027re going to put a question mark above it for now and get back to it,"},{"Start":"03:26.030 ","End":"03:27.890","Text":"and 0 potential energy."},{"Start":"03:27.890 ","End":"03:32.794","Text":"Why? Because our height relative in this problem are large H equals 0 at the end here."},{"Start":"03:32.794 ","End":"03:34.520","Text":"You can measure that from wheels to wheels,"},{"Start":"03:34.520 ","End":"03:35.870","Text":"you can measure that from cart to cart,"},{"Start":"03:35.870 ","End":"03:38.540","Text":"whatever you\u0027re measuring there it\u0027s the same drop in height,"},{"Start":"03:38.540 ","End":"03:42.290","Text":"so at the end height equal 0 and we have no potential energy left."},{"Start":"03:42.290 ","End":"03:45.435","Text":"Now we can set these 2 equations equal to each."},{"Start":"03:45.435 ","End":"03:49.100","Text":"If our initial energy equals our final energy,"},{"Start":"03:49.100 ","End":"03:53.750","Text":"then we can write that 1/2 of mv"},{"Start":"03:53.750 ","End":"04:03.705","Text":"final^2 equals 1/2 mu initial^2 plus mgh."},{"Start":"04:03.705 ","End":"04:05.563","Text":"Our ms can drop out,"},{"Start":"04:05.563 ","End":"04:07.520","Text":"and we can multiply it by 2,"},{"Start":"04:07.520 ","End":"04:09.420","Text":"and then take a square root of both sides,"},{"Start":"04:09.420 ","End":"04:18.330","Text":"and what we\u0027re left with is v f equals the square root of u_0 squared plus 2gh."},{"Start":"04:18.770 ","End":"04:23.855","Text":"That\u0027s your solution. Just for a quick recap of how we got here."},{"Start":"04:23.855 ","End":"04:25.520","Text":"First, we found our 2 forces,"},{"Start":"04:25.520 ","End":"04:27.095","Text":"in this case,"},{"Start":"04:27.095 ","End":"04:29.405","Text":"gravitational force and the normal force."},{"Start":"04:29.405 ","End":"04:31.535","Text":"We know that the gravitational force is"},{"Start":"04:31.535 ","End":"04:36.060","Text":"a conservative force intuitively and from past problems."},{"Start":"04:36.060 ","End":"04:39.980","Text":"We found that the work of the normal force in this case equal 0,"},{"Start":"04:39.980 ","End":"04:42.530","Text":"so it\u0027s also a conservative force."},{"Start":"04:42.530 ","End":"04:46.010","Text":"Then once we knew that we had a preservation of forces in the equation,"},{"Start":"04:46.010 ","End":"04:47.930","Text":"we set everything equal."},{"Start":"04:47.930 ","End":"04:53.375","Text":"Once we did that, we just need to set our initial and final energies to be the same,"},{"Start":"04:53.375 ","End":"04:56.255","Text":"do a little bit of math and find our solution."},{"Start":"04:56.255 ","End":"04:59.225","Text":"Up until now, the problems we\u0027ve done"},{"Start":"04:59.225 ","End":"05:02.890","Text":"had a preservation or conservation of energy in them."},{"Start":"05:02.890 ","End":"05:05.630","Text":"We know the process is what we just describe."},{"Start":"05:05.630 ","End":"05:07.820","Text":"What you\u0027re also going to encounter are problems"},{"Start":"05:07.820 ","End":"05:11.360","Text":"that do not have a conservation of energy,"},{"Start":"05:11.360 ","End":"05:12.620","Text":"and there\u0027s a different process there."},{"Start":"05:12.620 ","End":"05:16.970","Text":"It doesn\u0027t mean you can\u0027t use the body or the equations that you\u0027re dealing with,"},{"Start":"05:16.970 ","End":"05:20.050","Text":"but you do have to use a different device."},{"Start":"05:20.050 ","End":"05:23.360","Text":"If you don\u0027t have a conservation energy,"},{"Start":"05:23.360 ","End":"05:26.950","Text":"you have to use the theorem of work energy."},{"Start":"05:26.950 ","End":"05:28.895","Text":"We\u0027re going to talk about that in the next lecture."},{"Start":"05:28.895 ","End":"05:30.470","Text":"What I would suggest for now is do"},{"Start":"05:30.470 ","End":"05:35.720","Text":"a few more example exercises with conservation of energy before moving on to that."},{"Start":"05:35.720 ","End":"05:39.330","Text":"In the next video, I\u0027ll explain how that works."}],"ID":12673},{"Watched":false,"Name":"Exercise - an Object is Dropped Above a Vertical Spring","Duration":"5m 52s","ChapterTopicVideoID":12199,"CourseChapterTopicPlaylistID":5417,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:02.295","Text":"Hello. In this video,"},{"Start":"00:02.295 ","End":"00:05.235","Text":"we have a spring that\u0027s attached to the ground."},{"Start":"00:05.235 ","End":"00:06.660","Text":"It\u0027s an ideal spring,"},{"Start":"00:06.660 ","End":"00:09.060","Text":"meaning it doesn\u0027t have any mass,"},{"Start":"00:09.060 ","End":"00:12.494","Text":"and its spring constant is 50 Newtons."},{"Start":"00:12.494 ","End":"00:16.470","Text":"Now, we have a weight suspended above it in air."},{"Start":"00:16.470 ","End":"00:21.240","Text":"The mass is 2 kilograms and the height is 3 meters above the spring."},{"Start":"00:21.240 ","End":"00:26.055","Text":"It\u0027s dropped from a standing position with no speed down onto the spring."},{"Start":"00:26.055 ","End":"00:27.600","Text":"Part A asks me,"},{"Start":"00:27.600 ","End":"00:31.395","Text":"what is the maximal compression of the spring?"},{"Start":"00:31.395 ","End":"00:35.145","Text":"To solve this, I first need to find if I conservation of energy."},{"Start":"00:35.145 ","End":"00:36.450","Text":"I\u0027ll check my forces."},{"Start":"00:36.450 ","End":"00:38.775","Text":"Now, I have the force of a spring in this problem,"},{"Start":"00:38.775 ","End":"00:40.470","Text":"springs have potential energy."},{"Start":"00:40.470 ","End":"00:42.260","Text":"Therefore, it\u0027s a conservative force."},{"Start":"00:42.260 ","End":"00:45.050","Text":"I\u0027m also dealing with the force of gravity."},{"Start":"00:45.050 ","End":"00:50.095","Text":"I know that gravity is a conservative force because it has potential energy as well."},{"Start":"00:50.095 ","End":"00:51.950","Text":"I have conservative forces."},{"Start":"00:51.950 ","End":"00:54.140","Text":"I can now move on to the second part,"},{"Start":"00:54.140 ","End":"00:58.265","Text":"which is finding my initial and final energy and setting them equal."},{"Start":"00:58.265 ","End":"01:01.205","Text":"E_i, my initial energy in this case,"},{"Start":"01:01.205 ","End":"01:04.430","Text":"equals as always, kinetic energy plus potential energy."},{"Start":"01:04.430 ","End":"01:06.995","Text":"In this case, I have 2 types of potential energy,"},{"Start":"01:06.995 ","End":"01:11.220","Text":"I have gravity and I have the force of a spring."},{"Start":"01:11.480 ","End":"01:14.525","Text":"If I want to write out the formula for this,"},{"Start":"01:14.525 ","End":"01:17.945","Text":"E_k is 1/2mv^2,"},{"Start":"01:17.945 ","End":"01:21.655","Text":"U_g is mgh,"},{"Start":"01:21.655 ","End":"01:28.065","Text":"and my elastic energy is 1/2k Delta x^2."},{"Start":"01:28.065 ","End":"01:34.265","Text":"Now I want to fill in what I can for the initial energy using the given pieces of data."},{"Start":"01:34.265 ","End":"01:38.900","Text":"First of all, if we\u0027re calculating my kinetic energy, I know that it\u0027s 0."},{"Start":"01:38.900 ","End":"01:41.345","Text":"Why? Because my body starts at rest."},{"Start":"01:41.345 ","End":"01:43.440","Text":"The object is not moving,"},{"Start":"01:43.440 ","End":"01:45.995","Text":"the weight hasn\u0027t been dropped yet, so that\u0027s 0."},{"Start":"01:45.995 ","End":"01:47.870","Text":"Now if we add in the force of gravity,"},{"Start":"01:47.870 ","End":"01:51.590","Text":"we can replace our little h with our height in this problem."},{"Start":"01:51.590 ","End":"01:55.945","Text":"Let\u0027s set the top of the spring as height equals 0."},{"Start":"01:55.945 ","End":"02:02.700","Text":"That would make the height that it starts at big H. Our force of gravity is mgH."},{"Start":"02:03.530 ","End":"02:08.885","Text":"What we can then do for our spring is we know that\u0027s also equal to 0."},{"Start":"02:08.885 ","End":"02:11.495","Text":"Why? Because the spring is entirely extended,"},{"Start":"02:11.495 ","End":"02:13.750","Text":"it\u0027s not compressed at all."},{"Start":"02:13.750 ","End":"02:16.485","Text":"Now we can find the final energy."},{"Start":"02:16.485 ","End":"02:19.445","Text":"It\u0027s important to know exactly what we\u0027re trying to find."},{"Start":"02:19.445 ","End":"02:21.350","Text":"We\u0027re looking for the moment of"},{"Start":"02:21.350 ","End":"02:24.725","Text":"maximal compression of the spring when the weight is sitting"},{"Start":"02:24.725 ","End":"02:26.990","Text":"on the spring and it can\u0027t go any farther"},{"Start":"02:26.990 ","End":"02:29.990","Text":"down and has yet to start traveling up. It looks like this."},{"Start":"02:29.990 ","End":"02:32.270","Text":"This point, our weight has a velocity of"},{"Start":"02:32.270 ","End":"02:34.760","Text":"0 because if it was still going down any farther,"},{"Start":"02:34.760 ","End":"02:36.095","Text":"if it\u0027s still at more velocity,"},{"Start":"02:36.095 ","End":"02:37.910","Text":"the spring wouldn\u0027t be fully compressed."},{"Start":"02:37.910 ","End":"02:41.270","Text":"Similarly, it hasn\u0027t started going up yet because if it had been going up,"},{"Start":"02:41.270 ","End":"02:44.000","Text":"the spring would not be fully compressed either."},{"Start":"02:44.000 ","End":"02:48.500","Text":"This is a unique trait of springs that the maximal compression is a point"},{"Start":"02:48.500 ","End":"02:52.790","Text":"when any given weight on a spring will have a velocity of 0. This helps us a lot."},{"Start":"02:52.790 ","End":"02:55.555","Text":"It\u0027s good to remember this for other equations as well."},{"Start":"02:55.555 ","End":"02:58.310","Text":"When we look for our final energy,"},{"Start":"02:58.310 ","End":"03:00.365","Text":"we have to remember 1 other thing also,"},{"Start":"03:00.365 ","End":"03:02.870","Text":"which is the height is not 0."},{"Start":"03:02.870 ","End":"03:04.130","Text":"In fact, the height is,"},{"Start":"03:04.130 ","End":"03:05.220","Text":"we can call it Delta x,"},{"Start":"03:05.220 ","End":"03:08.720","Text":"it\u0027s below the height of 0 by an amount of Delta x."},{"Start":"03:08.720 ","End":"03:11.405","Text":"That\u0027s the unknown variable that we\u0027re looking for."},{"Start":"03:11.405 ","End":"03:14.125","Text":"Delta x is the solution to our problem."},{"Start":"03:14.125 ","End":"03:17.495","Text":"Now we can fill in our final energy in the problem."},{"Start":"03:17.495 ","End":"03:21.260","Text":"We know that our kinetic energy equals 0 once again because we just"},{"Start":"03:21.260 ","End":"03:25.170","Text":"talked about how the velocity equals 0. That can be filled in."},{"Start":"03:25.170 ","End":"03:27.080","Text":"If we talk about potential energy,"},{"Start":"03:27.080 ","End":"03:28.580","Text":"first we talk about gravity,"},{"Start":"03:28.580 ","End":"03:30.695","Text":"it\u0027s not exactly equal to 0."},{"Start":"03:30.695 ","End":"03:36.125","Text":"In fact, we have a height of negative Delta x that we just talked about."},{"Start":"03:36.125 ","End":"03:42.800","Text":"Really the term is mg and our h value will be negative Delta x,"},{"Start":"03:42.800 ","End":"03:44.660","Text":"so mg negative Delta x,"},{"Start":"03:44.660 ","End":"03:47.195","Text":"but it\u0027s also a negligible amount, as you\u0027ll see,"},{"Start":"03:47.195 ","End":"03:53.285","Text":"in terms of the height relation between the Delta x and H, 3 meters."},{"Start":"03:53.285 ","End":"03:56.960","Text":"But anyways, we should put this in to be completely correct."},{"Start":"03:56.960 ","End":"03:58.864","Text":"As for the spring,"},{"Start":"03:58.864 ","End":"04:00.800","Text":"we now have kinetic energy and gravity."},{"Start":"04:00.800 ","End":"04:02.120","Text":"We have the spring left."},{"Start":"04:02.120 ","End":"04:09.560","Text":"We know from above that that equals 1/2k times Delta x^2 just like in the formula."},{"Start":"04:09.560 ","End":"04:12.080","Text":"Now that we have our initial and our final energy,"},{"Start":"04:12.080 ","End":"04:16.400","Text":"we can set them equal to each other and use the principle of conservation of energy."},{"Start":"04:16.400 ","End":"04:20.488","Text":"We can say E_i=E_f,"},{"Start":"04:20.488 ","End":"04:22.740","Text":"and we can fill everything in."},{"Start":"04:23.110 ","End":"04:25.700","Text":"E_i, our initial energy,"},{"Start":"04:25.700 ","End":"04:30.150","Text":"equals mgH, and that equals E_f,"},{"Start":"04:30.150 ","End":"04:38.190","Text":"which is mg(negative Delta x) plus 1/2k Delta x^2."},{"Start":"04:38.190 ","End":"04:40.230","Text":"Now I can fill in the values that I know."},{"Start":"04:40.230 ","End":"04:41.695","Text":"My mass is 2,"},{"Start":"04:41.695 ","End":"04:44.705","Text":"I\u0027ll write up my gravity constant is 10,"},{"Start":"04:44.705 ","End":"04:46.895","Text":"and my height is 3."},{"Start":"04:46.895 ","End":"04:51.995","Text":"Again, mg is 2 times 10 and negative Delta x, we don\u0027t know yet."},{"Start":"04:51.995 ","End":"04:54.075","Text":"Of course, that\u0027s what we\u0027re trying to find,"},{"Start":"04:54.075 ","End":"04:57.455","Text":"and 1/2(50) equals 25x^2."},{"Start":"04:57.455 ","End":"04:59.570","Text":"Now we have a quadratic equation."},{"Start":"04:59.570 ","End":"05:01.355","Text":"When we go about solving it,"},{"Start":"05:01.355 ","End":"05:05.525","Text":"we can isolate Delta x and in the end,"},{"Start":"05:05.525 ","End":"05:09.780","Text":"we find that Delta x equals about 2 meters."},{"Start":"05:09.780 ","End":"05:13.170","Text":"It actually turns out that it\u0027s good we didn\u0027t throw out"},{"Start":"05:13.170 ","End":"05:17.375","Text":"the Delta x from our gravity equation because it wasn\u0027t really negligible."},{"Start":"05:17.375 ","End":"05:23.320","Text":"Actually, what we can deduce from that is that the spring is probably pretty weak."},{"Start":"05:23.320 ","End":"05:25.230","Text":"Here you have your solution,"},{"Start":"05:25.230 ","End":"05:27.050","Text":"2 meters equals Delta x,"},{"Start":"05:27.050 ","End":"05:30.785","Text":"which is your maximal compression of the spring."},{"Start":"05:30.785 ","End":"05:34.940","Text":"Just keep in mind again that we really just took our 2 points and it was"},{"Start":"05:34.940 ","End":"05:39.440","Text":"before we drop the object and after it has reached maximal compression,"},{"Start":"05:39.440 ","End":"05:41.120","Text":"at that moment of maximum compression."},{"Start":"05:41.120 ","End":"05:44.375","Text":"You don\u0027t need to break it down into when the mass hits the spring."},{"Start":"05:44.375 ","End":"05:47.210","Text":"Then the second equation there, it\u0027s an extra step."},{"Start":"05:47.210 ","End":"05:50.180","Text":"This is a method to solve the problem."},{"Start":"05:50.180 ","End":"05:53.250","Text":"Now let\u0027s move on to Part b."}],"ID":12674}],"Thumbnail":null,"ID":5417},{"Name":"Energy Conservation And The Work Energy Theorem part b","TopicPlaylistFirstVideoID":0,"Duration":null,"Videos":[{"Watched":false,"Name":"Review of Part A","Duration":"1m 13s","ChapterTopicVideoID":9038,"CourseChapterTopicPlaylistID":5418,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:03.510","Text":"Now we\u0027re starting Part 2 of our unit about"},{"Start":"00:03.510 ","End":"00:07.410","Text":"energy conservation and the theorem of work energy."},{"Start":"00:07.410 ","End":"00:09.690","Text":"But before we move on to Part 2,"},{"Start":"00:09.690 ","End":"00:16.845","Text":"I want to do a quick review of part A. Firstly,"},{"Start":"00:16.845 ","End":"00:19.350","Text":"everybody has a total energy."},{"Start":"00:19.350 ","End":"00:21.645","Text":"The total energy is symbolized with E,"},{"Start":"00:21.645 ","End":"00:23.160","Text":"and it\u0027s made up of 2 parts,"},{"Start":"00:23.160 ","End":"00:25.185","Text":"kinetic energy, E_k,"},{"Start":"00:25.185 ","End":"00:27.735","Text":"and potential energy, U."},{"Start":"00:27.735 ","End":"00:32.443","Text":"Kinetic energy is always 1/2mv^2"},{"Start":"00:32.443 ","End":"00:37.405","Text":"and potential energy depends on the question and depends on the forces at work."},{"Start":"00:37.405 ","End":"00:43.345","Text":"With every exercise you want to ask whether there\u0027s conservation of energy."},{"Start":"00:43.345 ","End":"00:45.785","Text":"The way to find that out is to find out whether"},{"Start":"00:45.785 ","End":"00:49.025","Text":"all of the forces are conservative forces."},{"Start":"00:49.025 ","End":"00:52.670","Text":"If we find that all the forces are conservative,"},{"Start":"00:52.670 ","End":"00:57.185","Text":"then what we need to do is set an equation where the initial energy,"},{"Start":"00:57.185 ","End":"00:58.910","Text":"the energy at the first moment,"},{"Start":"00:58.910 ","End":"01:02.465","Text":"is equal to the energy at the last moment, the final energy."},{"Start":"01:02.465 ","End":"01:05.375","Text":"This is symbolized by E_i and E_f."},{"Start":"01:05.375 ","End":"01:08.915","Text":"Once you have that, you calculate the kinetic energy at each moment,"},{"Start":"01:08.915 ","End":"01:11.000","Text":"the potential energy at each moment,"},{"Start":"01:11.000 ","End":"01:13.980","Text":"and set them equal, and you can solve."}],"ID":9311},{"Watched":false,"Name":"Part B","Duration":"2m 25s","ChapterTopicVideoID":9039,"CourseChapterTopicPlaylistID":5418,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:04.590","Text":"Up until now we\u0027ve solved problems with the conservation of energy."},{"Start":"00:04.590 ","End":"00:06.600","Text":"We find that all the forces are conservative."},{"Start":"00:06.600 ","End":"00:09.630","Text":"We said E_i the initial energy equal to E_f,"},{"Start":"00:09.630 ","End":"00:11.580","Text":"the final energy and we solve."},{"Start":"00:11.580 ","End":"00:13.470","Text":"The question is what happens when you have"},{"Start":"00:13.470 ","End":"00:17.340","Text":"non-conservative forces in your problem and you don\u0027t have conservation energy."},{"Start":"00:17.340 ","End":"00:22.065","Text":"In those cases, you want to use the work-energy theorem. You can see up here."},{"Start":"00:22.065 ","End":"00:25.335","Text":"The work-energy theorem is an equation of sorts."},{"Start":"00:25.335 ","End":"00:26.955","Text":"You can see it down here."},{"Start":"00:26.955 ","End":"00:29.835","Text":"We\u0027re going to put it in red because it\u0027s important and it\u0027s"},{"Start":"00:29.835 ","End":"00:33.450","Text":"W_nc equals Delta E. What does that mean?"},{"Start":"00:33.450 ","End":"00:37.890","Text":"Nc is an abbreviation of non-conservative."},{"Start":"00:37.890 ","End":"00:39.560","Text":"We\u0027re going to find the work of"},{"Start":"00:39.560 ","End":"00:43.145","Text":"the non-conservative forces and that\u0027s going to equal Delta E,"},{"Start":"00:43.145 ","End":"00:45.260","Text":"the change in the overall energy,"},{"Start":"00:45.260 ","End":"00:47.470","Text":"the change in total energy."},{"Start":"00:47.470 ","End":"00:49.890","Text":"Let\u0027s break this down a little bit."},{"Start":"00:49.890 ","End":"00:51.770","Text":"W_nc, the work of"},{"Start":"00:51.770 ","End":"00:55.580","Text":"the non-conservative forces means finding every non-conservative force,"},{"Start":"00:55.580 ","End":"00:58.325","Text":"calculating the work for each one, and summing them."},{"Start":"00:58.325 ","End":"01:00.005","Text":"That equals Delta E,"},{"Start":"01:00.005 ","End":"01:01.760","Text":"or the change in total energy."},{"Start":"01:01.760 ","End":"01:05.210","Text":"If you recall, total energy is comprised of 2 parts."},{"Start":"01:05.210 ","End":"01:10.505","Text":"Total energy is the kinetic energy plus the potential energy."},{"Start":"01:10.505 ","End":"01:12.215","Text":"When talking about Delta E,"},{"Start":"01:12.215 ","End":"01:13.820","Text":"we\u0027re talking about the difference between"},{"Start":"01:13.820 ","End":"01:16.265","Text":"the energy in the initial moment and the final moment."},{"Start":"01:16.265 ","End":"01:17.795","Text":"Whenever we use Delta,"},{"Start":"01:17.795 ","End":"01:19.340","Text":"in this case, n and others,"},{"Start":"01:19.340 ","End":"01:23.330","Text":"we\u0027re going to subtract the initial moment from the final moment to find that change."},{"Start":"01:23.330 ","End":"01:25.995","Text":"Delta E equals E_f,"},{"Start":"01:25.995 ","End":"01:28.955","Text":"the final energy minus E_i the initial energy."},{"Start":"01:28.955 ","End":"01:31.850","Text":"If you recall, in our problems with conservation of energy,"},{"Start":"01:31.850 ","End":"01:34.070","Text":"we said E_i equal to E_f."},{"Start":"01:34.070 ","End":"01:36.625","Text":"With the work-energy theorem,"},{"Start":"01:36.625 ","End":"01:40.965","Text":"we said Delta E equal to E_f minus E_i."},{"Start":"01:40.965 ","End":"01:48.140","Text":"What this means is that E_f minus E_i equals the work of the non-conservative forces."},{"Start":"01:48.140 ","End":"01:54.530","Text":"Another thing to pay attention to here is that if you notice if W_nc equals 0,"},{"Start":"01:54.530 ","End":"01:57.230","Text":"let\u0027s say in a given example."},{"Start":"01:57.230 ","End":"02:01.675","Text":"We know from our formula that equals E_f minus E_i."},{"Start":"02:01.675 ","End":"02:07.910","Text":"Then we can simplify this whole equation and we\u0027ll actually find that in this case,"},{"Start":"02:07.910 ","End":"02:10.880","Text":"E_f equals E_i or E_i equals E_f,"},{"Start":"02:10.880 ","End":"02:14.870","Text":"which brings us back to our equation for the conservation of energy."},{"Start":"02:14.870 ","End":"02:17.660","Text":"What this means is the work-energy theorem"},{"Start":"02:17.660 ","End":"02:21.590","Text":"accounts for situations where we have conservation of energy."},{"Start":"02:21.590 ","End":"02:25.680","Text":"Let\u0027s look at an example to see how this works."}],"ID":9312},{"Watched":false,"Name":"Example","Duration":"10m 51s","ChapterTopicVideoID":12200,"CourseChapterTopicPlaylistID":5418,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:03.270","Text":"Let\u0027s take the same example we used before."},{"Start":"00:03.270 ","End":"00:06.000","Text":"Where we have a cart that\u0027s going down a slope,"},{"Start":"00:06.000 ","End":"00:08.985","Text":"and it starts with a speed of u_0,"},{"Start":"00:08.985 ","End":"00:15.765","Text":"and the slope has a height of H. What we need to do is find the final velocity."},{"Start":"00:15.765 ","End":"00:19.215","Text":"As opposed to in the initial problem where there is no friction,"},{"Start":"00:19.215 ","End":"00:23.505","Text":"let\u0027s assume that in this problem 1 of the wheels of the cart fell off, like that."},{"Start":"00:23.505 ","End":"00:26.355","Text":"Now in this situation, we would definitely have friction."},{"Start":"00:26.355 ","End":"00:27.840","Text":"But to give it even more friction,"},{"Start":"00:27.840 ","End":"00:29.700","Text":"let\u0027s say the cart has no wheels."},{"Start":"00:29.700 ","End":"00:32.530","Text":"Let\u0027s say it looks something like this."},{"Start":"00:32.900 ","End":"00:35.940","Text":"Now we can add the friction."},{"Start":"00:35.940 ","End":"00:37.380","Text":"Let\u0027s say it\u0027s a known quantity."},{"Start":"00:37.380 ","End":"00:39.900","Text":"We can add it to our given data on the bottom,"},{"Start":"00:39.900 ","End":"00:45.370","Text":"Mu k. What we\u0027re trying to find is the same thing,"},{"Start":"00:45.370 ","End":"00:49.225","Text":"we\u0027re trying to find at the end once the cart reaches the bottom,"},{"Start":"00:49.225 ","End":"00:51.130","Text":"what will be the final velocity."},{"Start":"00:51.130 ","End":"00:52.570","Text":"When the cart is here,"},{"Start":"00:52.570 ","End":"00:54.520","Text":"once it\u0027s gone to the entire slope,"},{"Start":"00:54.520 ","End":"00:55.900","Text":"what velocity will it have."},{"Start":"00:55.900 ","End":"00:57.610","Text":"We can call that V_f."},{"Start":"00:57.610 ","End":"00:59.950","Text":"Now how do I solve this problem?"},{"Start":"00:59.950 ","End":"01:03.235","Text":"The first thing I want to check is if I have conservation of energy."},{"Start":"01:03.235 ","End":"01:08.380","Text":"Now we know that because we have friction we\u0027re not going to have conservation of energy."},{"Start":"01:08.380 ","End":"01:10.840","Text":"I can\u0027t set E_i,"},{"Start":"01:10.840 ","End":"01:13.525","Text":"initial energy, equal to E_f, final energy."},{"Start":"01:13.525 ","End":"01:14.710","Text":"That won\u0027t work here."},{"Start":"01:14.710 ","End":"01:20.125","Text":"But what I can do is compute the work of the non-conservative forces."},{"Start":"01:20.125 ","End":"01:22.890","Text":"In this case, it\u0027s the work of friction."},{"Start":"01:22.890 ","End":"01:25.110","Text":"In a lot of cases, it will be like that."},{"Start":"01:25.110 ","End":"01:27.980","Text":"That\u0027s going to equal the change in the total energy."},{"Start":"01:27.980 ","End":"01:29.420","Text":"Or put in other words,"},{"Start":"01:29.420 ","End":"01:30.575","Text":"if you recall from before,"},{"Start":"01:30.575 ","End":"01:32.735","Text":"that equals E_f, final energy,"},{"Start":"01:32.735 ","End":"01:35.515","Text":"minus E_i, the initial energy."},{"Start":"01:35.515 ","End":"01:40.235","Text":"Set the work of the force of friction equal to E_f minus E_i."},{"Start":"01:40.235 ","End":"01:42.635","Text":"But first what I want to do is write out E_f,"},{"Start":"01:42.635 ","End":"01:45.565","Text":"write out E_i, and subtract them."},{"Start":"01:45.565 ","End":"01:49.350","Text":"Let\u0027s start with the E_i and E_f,"},{"Start":"01:49.350 ","End":"01:52.290","Text":"and then we\u0027ll move on to W_f_k."},{"Start":"01:52.290 ","End":"01:54.840","Text":"The initial energy, E_i,"},{"Start":"01:54.840 ","End":"01:57.945","Text":"equals 1/2 of mv^2."},{"Start":"01:57.945 ","End":"01:59.550","Text":"In our given data,"},{"Start":"01:59.550 ","End":"02:00.850","Text":"we know that v,"},{"Start":"02:00.850 ","End":"02:02.390","Text":"the initial velocity,"},{"Start":"02:02.390 ","End":"02:04.400","Text":"that is, equals u_0."},{"Start":"02:04.400 ","End":"02:06.080","Text":"We can fill that in, instead of as v,"},{"Start":"02:06.080 ","End":"02:09.575","Text":"we can write it as 1/2mU_0^2."},{"Start":"02:09.575 ","End":"02:14.165","Text":"The other energies it has the potential energy of gravity, mgh."},{"Start":"02:14.165 ","End":"02:15.875","Text":"Now the final energy,"},{"Start":"02:15.875 ","End":"02:21.205","Text":"E_f, equals 1/2 mV_f^2."},{"Start":"02:21.205 ","End":"02:24.500","Text":"Remember, V_f is what we\u0027re looking for."},{"Start":"02:24.500 ","End":"02:28.105","Text":"Now we also have the potential energy of gravity there."},{"Start":"02:28.105 ","End":"02:31.310","Text":"But we know that at this point the height h=0,"},{"Start":"02:31.310 ","End":"02:33.070","Text":"so we can write that as 0."},{"Start":"02:33.070 ","End":"02:38.090","Text":"Now let\u0027s move on to calculating w. The work of the non-conservative force,"},{"Start":"02:38.090 ","End":"02:42.755","Text":"in this case, the work of the force of friction. What does that equal?"},{"Start":"02:42.755 ","End":"02:48.870","Text":"Well, what we have to do is we have to take an integral of the force f_k."},{"Start":"02:48.870 ","End":"02:54.605","Text":"d_r. The first thing we have to do is find the force of friction."},{"Start":"02:54.605 ","End":"02:56.090","Text":"Let\u0027s assume for a second,"},{"Start":"02:56.090 ","End":"02:57.635","Text":"for the sake of simplicity,"},{"Start":"02:57.635 ","End":"03:02.470","Text":"that our object m starts really on the edge of the slope here."},{"Start":"03:02.470 ","End":"03:04.515","Text":"It only has friction on the slope,"},{"Start":"03:04.515 ","End":"03:06.830","Text":"and the moment we\u0027re measuring as our final velocity is really"},{"Start":"03:06.830 ","End":"03:09.275","Text":"the exact moment that it comes off the slope,"},{"Start":"03:09.275 ","End":"03:10.370","Text":"really at the edge there."},{"Start":"03:10.370 ","End":"03:14.120","Text":"So we don\u0027t have to worry about any friction on the flat portions,"},{"Start":"03:14.120 ","End":"03:15.785","Text":"but only on the slope."},{"Start":"03:15.785 ","End":"03:19.055","Text":"We are going to need a couple of other things to figure this out."},{"Start":"03:19.055 ","End":"03:22.430","Text":"First of all, we need to know the angle that this slope is at."},{"Start":"03:22.430 ","End":"03:26.030","Text":"For the sake of the problem let\u0027s call this angle Theta."},{"Start":"03:26.030 ","End":"03:28.610","Text":"Now what we want to calculate is,"},{"Start":"03:28.610 ","End":"03:32.140","Text":"let\u0027s assume the mass is in the middle of the slope here, on its way down."},{"Start":"03:32.140 ","End":"03:34.445","Text":"We need to calculate the force of friction."},{"Start":"03:34.445 ","End":"03:35.960","Text":"Now we know that the friction,"},{"Start":"03:35.960 ","End":"03:38.210","Text":"when our object is in the middle here,"},{"Start":"03:38.210 ","End":"03:40.490","Text":"is going to be working upwards,"},{"Start":"03:40.490 ","End":"03:41.660","Text":"towards the top of the slope."},{"Start":"03:41.660 ","End":"03:45.370","Text":"The way that we calculate that is the force of friction,"},{"Start":"03:45.370 ","End":"03:49.055","Text":"f_k, equals Mu k times N, the normal."},{"Start":"03:49.055 ","End":"03:51.290","Text":"Now the normal, as we know,"},{"Start":"03:51.290 ","End":"03:54.485","Text":"is perpendicular to the direction of the object,"},{"Start":"03:54.485 ","End":"03:57.595","Text":"so it\u0027s also perpendicular to the slope itself."},{"Start":"03:57.595 ","End":"04:00.320","Text":"We\u0027re going to set an axis, the y-axis,"},{"Start":"04:00.320 ","End":"04:02.690","Text":"perpendicular or orthogonal to the slope,"},{"Start":"04:02.690 ","End":"04:06.620","Text":"and the x-axis parallel to the slope, like so."},{"Start":"04:06.620 ","End":"04:10.535","Text":"Let\u0027s add in the force of gravity here, mg."},{"Start":"04:10.535 ","End":"04:14.045","Text":"The way we calculate the forces on the y-axis is"},{"Start":"04:14.045 ","End":"04:21.300","Text":"Sigma f_y equals N minus mg cosine Theta."},{"Start":"04:21.300 ","End":"04:24.400","Text":"It\u0027s good to remember here that the force of"},{"Start":"04:24.400 ","End":"04:28.465","Text":"gravity that is tangential to the slope is sine Theta."},{"Start":"04:28.465 ","End":"04:33.040","Text":"The force that is perpendicular to the slope is cosine Theta."},{"Start":"04:33.040 ","End":"04:37.915","Text":"We can set this to 0 because we know the object doesn\u0027t move along the y-axis."},{"Start":"04:37.915 ","End":"04:43.225","Text":"We can then do is set N equal to mg cosine Theta."},{"Start":"04:43.225 ","End":"04:47.075","Text":"We can put this into our equation above for the force of friction."},{"Start":"04:47.075 ","End":"04:49.720","Text":"We can now write this out in a new way."},{"Start":"04:49.720 ","End":"04:52.000","Text":"F_k, the force of friction,"},{"Start":"04:52.000 ","End":"04:57.770","Text":"equals Mu k times mg cosine Theta."},{"Start":"04:57.770 ","End":"05:00.310","Text":"For now, we\u0027re going to ignore the fact that"},{"Start":"05:00.310 ","End":"05:04.120","Text":"the force of friction is negative and just find the absolute value."},{"Start":"05:04.120 ","End":"05:09.860","Text":"The second thing to realize here is that the force of friction is actually a constant."},{"Start":"05:09.860 ","End":"05:11.715","Text":"Mu k is constant,"},{"Start":"05:11.715 ","End":"05:14.725","Text":"mg is constant, and the angle Theta is constant."},{"Start":"05:14.725 ","End":"05:17.680","Text":"If this is a constant, we can take it out of our integral"},{"Start":"05:17.680 ","End":"05:20.650","Text":"above when calculating the work of f_k,"},{"Start":"05:20.650 ","End":"05:23.245","Text":"and we can solve it a different way."},{"Start":"05:23.245 ","End":"05:25.000","Text":"We solve it as follows."},{"Start":"05:25.000 ","End":"05:33.955","Text":"The absolute value of f_k times the total displacement,"},{"Start":"05:33.955 ","End":"05:36.475","Text":"Delta r, the absolute value of that,"},{"Start":"05:36.475 ","End":"05:38.590","Text":"times the cosine of Alpha,"},{"Start":"05:38.590 ","End":"05:40.435","Text":"the angle between the 2 of them."},{"Start":"05:40.435 ","End":"05:45.380","Text":"We know that the absolute value of the force of friction is listed below."},{"Start":"05:45.380 ","End":"05:48.665","Text":"The magnitude of the displacement we\u0027ll find in a moment."},{"Start":"05:48.665 ","End":"05:51.905","Text":"Then we just have to find cosine of Alpha, the angle between them."},{"Start":"05:51.905 ","End":"05:55.220","Text":"The magnitude of the displacement is going to be"},{"Start":"05:55.220 ","End":"05:56.750","Text":"a vector that goes from the top of"},{"Start":"05:56.750 ","End":"05:59.345","Text":"the slope to the bottom of the slope, in a straight line."},{"Start":"05:59.345 ","End":"06:02.000","Text":"We\u0027re not including anything before the slope or after,"},{"Start":"06:02.000 ","End":"06:03.890","Text":"just the whole line across the slope."},{"Start":"06:03.890 ","End":"06:06.080","Text":"The vector is this red line here."},{"Start":"06:06.080 ","End":"06:08.345","Text":"That is the displacement."},{"Start":"06:08.345 ","End":"06:11.375","Text":"In the same way that we talked before with e,"},{"Start":"06:11.375 ","End":"06:15.545","Text":"Delta r is the change between the initial moment and the final moment."},{"Start":"06:15.545 ","End":"06:20.005","Text":"Delta r equals r_f minus r_i."},{"Start":"06:20.005 ","End":"06:23.015","Text":"If you subtract the final vector from the initial vector,"},{"Start":"06:23.015 ","End":"06:27.710","Text":"you can think of that as another way to find Delta r. Now we see here that Delta r,"},{"Start":"06:27.710 ","End":"06:30.905","Text":"the displacement, is the entire diagonal line"},{"Start":"06:30.905 ","End":"06:34.145","Text":"across the right angle triangle with H as the height,"},{"Start":"06:34.145 ","End":"06:35.435","Text":"capital H, that is."},{"Start":"06:35.435 ","End":"06:36.920","Text":"It\u0027s a right-angle triangle."},{"Start":"06:36.920 ","End":"06:41.540","Text":"Now we can do is use some trigonometry to solve for the magnitude of"},{"Start":"06:41.540 ","End":"06:48.850","Text":"Delta r. H divided by the magnitude of Delta r equals sine of Theta."},{"Start":"06:48.850 ","End":"06:52.760","Text":"Another way to express the magnitude of the displacement,"},{"Start":"06:52.760 ","End":"06:55.100","Text":"that is the magnitude of Delta r,"},{"Start":"06:55.100 ","End":"07:03.180","Text":"is magnitude of Delta r of the displacement equals H divided by sine of Theta."},{"Start":"07:03.840 ","End":"07:08.410","Text":"Now we know the magnitude of Delta r, the displacement."},{"Start":"07:08.410 ","End":"07:12.550","Text":"We know from before the magnitude of the force of friction."},{"Start":"07:12.550 ","End":"07:15.070","Text":"We need to find cosine of the angle Alpha,"},{"Start":"07:15.070 ","End":"07:16.670","Text":"the angle between the 2."},{"Start":"07:16.670 ","End":"07:19.885","Text":"Delta r goes downwards along this diagonal,"},{"Start":"07:19.885 ","End":"07:22.600","Text":"and friction goes upwards along the same diagonal."},{"Start":"07:22.600 ","End":"07:26.050","Text":"The angle between the 2 of them is 180 degrees."},{"Start":"07:26.050 ","End":"07:31.150","Text":"Now, this is important because the cosine of 180 is negative 1,"},{"Start":"07:31.150 ","End":"07:33.835","Text":"which means that we\u0027re dealing with a negative force here."},{"Start":"07:33.835 ","End":"07:35.770","Text":"In general, kinetic friction,"},{"Start":"07:35.770 ","End":"07:38.098","Text":"the force of friction, is a negative force,"},{"Start":"07:38.098 ","End":"07:39.160","Text":"it drags us backwards,"},{"Start":"07:39.160 ","End":"07:43.285","Text":"it pushes us away from the general direction that an object is going to move."},{"Start":"07:43.285 ","End":"07:46.480","Text":"Now we\u0027re at a point where we can start really solving,"},{"Start":"07:46.480 ","End":"07:48.730","Text":"filling things in, setting things equal."},{"Start":"07:48.730 ","End":"07:52.475","Text":"What we\u0027re going to do is on the side here we\u0027ll write everything out."},{"Start":"07:52.475 ","End":"07:58.190","Text":"First, the work of friction is the absolute value of f_k,"},{"Start":"07:58.190 ","End":"08:05.055","Text":"which is Mu k times mg cosine of Theta."},{"Start":"08:05.055 ","End":"08:09.530","Text":"That\u0027s multiplied by the absolute value of Delta r,"},{"Start":"08:09.530 ","End":"08:14.085","Text":"which is H over sine Theta and that\u0027s multiplied by negative 1."},{"Start":"08:14.085 ","End":"08:16.025","Text":"We\u0027ll put a negative sign at the beginning here."},{"Start":"08:16.025 ","End":"08:19.520","Text":"This equals E_f minus E_i."},{"Start":"08:19.520 ","End":"08:22.265","Text":"Let\u0027s first put in E_f, and then we\u0027ll find E_i."},{"Start":"08:22.265 ","End":"08:28.840","Text":"E_f equals 1/2 mV_f^2."},{"Start":"08:28.840 ","End":"08:31.515","Text":"We\u0027ll subtract from that E_i,"},{"Start":"08:31.515 ","End":"08:38.840","Text":"which is 1/2mU _0^2 minus mgH,"},{"Start":"08:38.840 ","End":"08:40.625","Text":"because we know the height at the beginning is large"},{"Start":"08:40.625 ","End":"08:44.615","Text":"H. This is really all I need to solve."},{"Start":"08:44.615 ","End":"08:46.510","Text":"Everything is given except for V_f,"},{"Start":"08:46.510 ","End":"08:48.155","Text":"so I can solve for V_f."},{"Start":"08:48.155 ","End":"08:51.800","Text":"The first thing I\u0027ll do is take out all the m\u0027s because I can simplify that."},{"Start":"08:51.800 ","End":"08:57.060","Text":"Remember, I\u0027ve kept this minus sign in here because it is a negative force."},{"Start":"08:57.080 ","End":"09:00.015","Text":"When I solve for V_f,"},{"Start":"09:00.015 ","End":"09:02.060","Text":"what I\u0027m going to get is going to be a little complex,"},{"Start":"09:02.060 ","End":"09:03.770","Text":"but I\u0027ll write it out for you anyways."},{"Start":"09:03.770 ","End":"09:10.110","Text":"V_f equals the square root of u_0^2"},{"Start":"09:10.110 ","End":"09:17.730","Text":"plus 2gH"},{"Start":"09:17.730 ","End":"09:21.045","Text":"times 1"},{"Start":"09:21.045 ","End":"09:26.530","Text":"minus Mu k cotangent Theta."},{"Start":"09:26.740 ","End":"09:29.510","Text":"You should probably simplify this further,"},{"Start":"09:29.510 ","End":"09:31.220","Text":"but I\u0027ll leave that to you."},{"Start":"09:31.220 ","End":"09:34.400","Text":"For now, what I\u0027d like to do is summarize what we did here."},{"Start":"09:34.400 ","End":"09:38.945","Text":"First I checked all my forces and found that it did not have a conservation of energy."},{"Start":"09:38.945 ","End":"09:41.990","Text":"Instead of setting my initial and final forces equal,"},{"Start":"09:41.990 ","End":"09:45.570","Text":"I set.W_f_k equal to the change in"},{"Start":"09:45.570 ","End":"09:50.225","Text":"E. First I found my E_i and my E_f, and wrote them out."},{"Start":"09:50.225 ","End":"09:52.580","Text":"Then I solved for.W_f_k."},{"Start":"09:52.580 ","End":"09:56.165","Text":"That is the work of the force of friction, kinetic friction."},{"Start":"09:56.165 ","End":"10:02.555","Text":"That equals absolute value f_k times the magnitude of r times the cosine of Alpha."},{"Start":"10:02.555 ","End":"10:06.860","Text":"I know I can do this instead of doing an integral because f_k is a constant."},{"Start":"10:06.860 ","End":"10:09.950","Text":"I only know that because I solve for f_k using"},{"Start":"10:09.950 ","End":"10:13.495","Text":"the forces along the y-axis and found it to be constant."},{"Start":"10:13.495 ","End":"10:16.640","Text":"From there I had all my values and I could solve."},{"Start":"10:16.640 ","End":"10:18.755","Text":"Now 1 more thing I\u0027d like to mention,"},{"Start":"10:18.755 ","End":"10:22.835","Text":"is you don\u0027t have to think of the equation in the terms we wrote it out as."},{"Start":"10:22.835 ","End":"10:26.375","Text":"You can also think of it as E initial plus"},{"Start":"10:26.375 ","End":"10:30.800","Text":"the work of the non-conservative forces equals E final."},{"Start":"10:30.800 ","End":"10:33.740","Text":"Both are the same, algebraically they\u0027re the same."},{"Start":"10:33.740 ","End":"10:36.860","Text":"You should find which is most comfortable for you to work with."},{"Start":"10:36.860 ","End":"10:38.539","Text":"I\u0027m talking about this here,"},{"Start":"10:38.539 ","End":"10:41.510","Text":"and I\u0027ll also put it in the lecture slide so that you"},{"Start":"10:41.510 ","End":"10:44.840","Text":"can think about which is easier for you to use, which you prefer."},{"Start":"10:44.840 ","End":"10:51.660","Text":"As you can see, I put here E_i plus W_NC equals E_F."}],"ID":12675}],"Thumbnail":null,"ID":5418},{"Name":"Work Done By A Constant Force","TopicPlaylistFirstVideoID":0,"Duration":null,"Videos":[{"Watched":false,"Name":"Work- Formula","Duration":"2m 18s","ChapterTopicVideoID":9041,"CourseChapterTopicPlaylistID":5419,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:01.890","Text":"Hello. In this lecture,"},{"Start":"00:01.890 ","End":"00:03.300","Text":"we\u0027re going to talk about work,"},{"Start":"00:03.300 ","End":"00:06.820","Text":"especially in terms of how it\u0027s exerted on a constant force."},{"Start":"00:06.820 ","End":"00:10.035","Text":"Work is symbolized by the letter w,"},{"Start":"00:10.035 ","End":"00:14.175","Text":"and it equals the integral of F dot dr. That\u0027s"},{"Start":"00:14.175 ","End":"00:20.100","Text":"a force scalar multiplication with the trajectory itself."},{"Start":"00:20.100 ","End":"00:23.000","Text":"Basically what we\u0027re doing is taking an integral of"},{"Start":"00:23.000 ","End":"00:26.709","Text":"force times the length of the trajectory."},{"Start":"00:26.709 ","End":"00:29.855","Text":"When do we use this term work?"},{"Start":"00:29.855 ","End":"00:34.250","Text":"It\u0027s really a way to solve problems mathematically."},{"Start":"00:34.250 ","End":"00:36.110","Text":"You can give it all sorts of meanings,"},{"Start":"00:36.110 ","End":"00:38.690","Text":"and we can talk about that and we will talk about that later,"},{"Start":"00:38.690 ","End":"00:40.190","Text":"but the best way to think about it as"},{"Start":"00:40.190 ","End":"00:44.125","Text":"a mathematical tool to help us in certain situations."},{"Start":"00:44.125 ","End":"00:47.105","Text":"For now, I\u0027m not going to deal with this integral itself,"},{"Start":"00:47.105 ","End":"00:51.370","Text":"but talk about a situation when we have a constant force."},{"Start":"00:51.370 ","End":"00:53.280","Text":"If my force is constant,"},{"Start":"00:53.280 ","End":"00:55.040","Text":"and only if my force is constant,"},{"Start":"00:55.040 ","End":"00:59.900","Text":"I can take f out of the integral and I end up with the following formula."},{"Start":"00:59.900 ","End":"01:03.845","Text":"The magnitude of F of the force times the displacement,"},{"Start":"01:03.845 ","End":"01:07.940","Text":"which is the shortest distance between the initial and final points of my trajectory,"},{"Start":"01:07.940 ","End":"01:09.544","Text":"times the cos(Alpha),"},{"Start":"01:09.544 ","End":"01:11.585","Text":"the angle between the 2 of them."},{"Start":"01:11.585 ","End":"01:14.870","Text":"This works because if the force is constant,"},{"Start":"01:14.870 ","End":"01:16.265","Text":"I can take it out of the integral,"},{"Start":"01:16.265 ","End":"01:21.120","Text":"and the integral of dr will give me the displacement."},{"Start":"01:21.560 ","End":"01:24.425","Text":"From there it\u0027s a scalar multiplication"},{"Start":"01:24.425 ","End":"01:27.080","Text":"multiplied by the cosine of the angle between them."},{"Start":"01:27.080 ","End":"01:29.915","Text":"For a bit of a deeper explanation,"},{"Start":"01:29.915 ","End":"01:32.120","Text":"the displacement is the difference between"},{"Start":"01:32.120 ","End":"01:35.635","Text":"the final point and the initial point on my vectors."},{"Start":"01:35.635 ","End":"01:38.330","Text":"For example, if I had"},{"Start":"01:38.330 ","End":"01:42.860","Text":"the following starting point and the following initial and final point,"},{"Start":"01:42.860 ","End":"01:46.830","Text":"and this is my coordinates,"},{"Start":"01:46.830 ","End":"01:51.080","Text":"then from my initial point ri to my final point,"},{"Start":"01:51.080 ","End":"01:53.089","Text":"maybe that was the path it took,"},{"Start":"01:53.089 ","End":"01:56.870","Text":"the displacement would be the shortest distance between the 2 of them."},{"Start":"01:56.870 ","End":"01:59.240","Text":"It would be this line in red."},{"Start":"01:59.240 ","End":"02:04.730","Text":"Keep in mind, it doesn\u0027t matter how I got from my initial point to my final point."},{"Start":"02:04.730 ","End":"02:07.460","Text":"It could have been in a straight line along the displacement."},{"Start":"02:07.460 ","End":"02:10.535","Text":"It could have been the line we drew here of the 2 vectors."},{"Start":"02:10.535 ","End":"02:13.700","Text":"It could have been its own path that squiggles around like this."},{"Start":"02:13.700 ","End":"02:15.245","Text":"It makes no difference."},{"Start":"02:15.245 ","End":"02:17.730","Text":"Let\u0027s look at an example."}],"ID":9314},{"Watched":false,"Name":"Example","Duration":"3m 34s","ChapterTopicVideoID":9042,"CourseChapterTopicPlaylistID":5419,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:02.790","Text":"In this example, I\u0027m given a mass M,"},{"Start":"00:02.790 ","End":"00:06.270","Text":"which is sitting on a surface that has some friction,"},{"Start":"00:06.270 ","End":"00:10.305","Text":"which we usually symbolize with these lines coming out of the bottom of the surface."},{"Start":"00:10.305 ","End":"00:14.235","Text":"Now I\u0027m told that the friction coefficient is Mu_"},{"Start":"00:14.235 ","End":"00:18.140","Text":"k and that the mass is moving"},{"Start":"00:18.140 ","End":"00:22.415","Text":"along the surface at some velocity of arbitrary velocity V,"},{"Start":"00:22.415 ","End":"00:26.225","Text":"and we\u0027re supposed to calculate the work done by fk,"},{"Start":"00:26.225 ","End":"00:28.600","Text":"the force of kinetic friction,"},{"Start":"00:28.600 ","End":"00:31.425","Text":"so what is fk equal to?"},{"Start":"00:31.425 ","End":"00:37.430","Text":"We know that it\u0027s equal to Mu_k times n. If you recall N,"},{"Start":"00:37.430 ","End":"00:39.335","Text":"the normal force is on the y-axis,"},{"Start":"00:39.335 ","End":"00:40.385","Text":"so in this case,"},{"Start":"00:40.385 ","End":"00:47.200","Text":"it\u0027s equal to mg. We can write that the magnitude of fk is equal to Mu_k mg."},{"Start":"00:47.200 ","End":"00:51.450","Text":"If my force is equal to Mu_k mg, it\u0027s constant,"},{"Start":"00:51.450 ","End":"00:53.420","Text":"so I can now skip doing the integral and"},{"Start":"00:53.420 ","End":"00:55.595","Text":"go straight to the formula we just talked about,"},{"Start":"00:55.595 ","End":"00:58.250","Text":"which is the magnitude of the force times"},{"Start":"00:58.250 ","End":"01:02.330","Text":"the displacement of the object times the cosine of the angle between them."},{"Start":"01:02.330 ","End":"01:05.015","Text":"We need to figure out what is the displacement."},{"Start":"01:05.015 ","End":"01:06.545","Text":"Now that has to be given to us."},{"Start":"01:06.545 ","End":"01:11.420","Text":"Let\u0027s assume we\u0027re moving from this initial point to that endpoint along this path."},{"Start":"01:11.420 ","End":"01:13.595","Text":"That means that our displacement if it\u0027s,"},{"Start":"01:13.595 ","End":"01:14.870","Text":"let\u0027s say 2 meters,"},{"Start":"01:14.870 ","End":"01:17.180","Text":"would be a vector from"},{"Start":"01:17.180 ","End":"01:21.310","Text":"the initial point to the endpoint with a length or magnitude of 2 meters."},{"Start":"01:21.310 ","End":"01:24.770","Text":"With that given we know that the magnitude is 2 meters,"},{"Start":"01:24.770 ","End":"01:27.170","Text":"the magnitude of our displacement,"},{"Start":"01:27.170 ","End":"01:30.755","Text":"so that means work W equals the force"},{"Start":"01:30.755 ","End":"01:38.035","Text":"Mu_k mg times 2 meters times the cosine of the angle between the 2."},{"Start":"01:38.035 ","End":"01:41.810","Text":"Notice that before when I was finding the magnitude of my kinetic friction,"},{"Start":"01:41.810 ","End":"01:43.460","Text":"I didn\u0027t care whether it was positive or"},{"Start":"01:43.460 ","End":"01:45.905","Text":"negative because the magnitude is an absolute value."},{"Start":"01:45.905 ","End":"01:49.595","Text":"Now though, when I need to find the angle between the 2 vectors,"},{"Start":"01:49.595 ","End":"01:52.180","Text":"the direction very much matters to me."},{"Start":"01:52.180 ","End":"01:55.460","Text":"I know in this case that my friction will be pulling me to the left,"},{"Start":"01:55.460 ","End":"01:56.870","Text":"will be pulling me backwards,"},{"Start":"01:56.870 ","End":"01:59.555","Text":"and that my displacement is going towards the right,"},{"Start":"01:59.555 ","End":"02:02.870","Text":"meaning that these 2 vectors are facing in exact opposite directions,"},{"Start":"02:02.870 ","End":"02:06.300","Text":"so the angle between them is 180 degrees."},{"Start":"02:06.300 ","End":"02:08.765","Text":"That means that if I fill in my equation,"},{"Start":"02:08.765 ","End":"02:15.590","Text":"I\u0027ll have W equals Mu_k mg times 2 meters times the height cosine of 180 degrees."},{"Start":"02:15.590 ","End":"02:18.170","Text":"The cosine of 180 degrees is negative 1,"},{"Start":"02:18.170 ","End":"02:24.715","Text":"so my answer is W equals negative Mu_k mg times 2."},{"Start":"02:24.715 ","End":"02:30.245","Text":"It\u0027s important to note here that the negative value for the work is"},{"Start":"02:30.245 ","End":"02:32.840","Text":"very much intuitive and makes sense because we"},{"Start":"02:32.840 ","End":"02:35.500","Text":"have a friction pulling our object the opposite way,"},{"Start":"02:35.500 ","End":"02:38.210","Text":"and that this will very often happen."},{"Start":"02:38.210 ","End":"02:41.930","Text":"You\u0027re going to have friction that\u0027s going the opposite direction of the displacement,"},{"Start":"02:41.930 ","End":"02:44.555","Text":"and you\u0027ll have a negative value for your work."},{"Start":"02:44.555 ","End":"02:46.475","Text":"This is the formula you\u0027re going to use often."},{"Start":"02:46.475 ","End":"02:49.895","Text":"You\u0027re going to see this rather frequently, especially with friction."},{"Start":"02:49.895 ","End":"02:51.845","Text":"Let\u0027s take a second example."},{"Start":"02:51.845 ","End":"02:56.545","Text":"Let\u0027s say we have a force capital F that\u0027s going up and towards the right."},{"Start":"02:56.545 ","End":"02:59.105","Text":"Like so you can see it in blue."},{"Start":"02:59.105 ","End":"03:03.200","Text":"If I know that the force F has a given value"},{"Start":"03:03.200 ","End":"03:07.670","Text":"and that it\u0027s at an angle of 30 degrees with my displacement vector."},{"Start":"03:07.670 ","End":"03:12.020","Text":"Then I can calculate the work of the force F by saying"},{"Start":"03:12.020 ","End":"03:16.250","Text":"that it\u0027s the magnitude of F times 2 meters,"},{"Start":"03:16.250 ","End":"03:18.965","Text":"that is, times the cosine of 30 degrees."},{"Start":"03:18.965 ","End":"03:22.280","Text":"Now the cosine of 30 degrees is root 3 over 2."},{"Start":"03:22.280 ","End":"03:27.500","Text":"Root 3 over 2 times 2 this means the magnitude of the force F times root 3."},{"Start":"03:27.500 ","End":"03:30.770","Text":"Keep in mind that these are all values they\u0027re scalars."},{"Start":"03:30.770 ","End":"03:32.255","Text":"There is no direction involved."},{"Start":"03:32.255 ","End":"03:34.500","Text":"It\u0027s only a magnitude."}],"ID":9315},{"Watched":false,"Name":"Sum of Work","Duration":"1m 35s","ChapterTopicVideoID":9043,"CourseChapterTopicPlaylistID":5419,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:05.055","Text":"Hello. I wanted to talk about 1 basic property of work."},{"Start":"00:05.055 ","End":"00:06.600","Text":"If you recall in the last problem,"},{"Start":"00:06.600 ","End":"00:10.635","Text":"we calculated the work of the force F and the work of the force f_k."},{"Start":"00:10.635 ","End":"00:13.620","Text":"What I can do is I can calculate the work of"},{"Start":"00:13.620 ","End":"00:16.470","Text":"each and every force in a problem and sum them,"},{"Start":"00:16.470 ","End":"00:19.525","Text":"put them together to find the sum of the forces."},{"Start":"00:19.525 ","End":"00:22.050","Text":"There\u0027s a basic property that can help me here,"},{"Start":"00:22.050 ","End":"00:25.395","Text":"which is the work of the sum of forces,"},{"Start":"00:25.395 ","End":"00:28.290","Text":"is equal to the sum of the work."},{"Start":"00:28.290 ","End":"00:30.810","Text":"Meaning that if I take each individual force and add it up,"},{"Start":"00:30.810 ","End":"00:36.375","Text":"it\u0027s the same as taking the work of all forces together."},{"Start":"00:36.375 ","End":"00:37.800","Text":"Returning to our example,"},{"Start":"00:37.800 ","End":"00:39.120","Text":"there are 2 ways we could do this."},{"Start":"00:39.120 ","End":"00:40.470","Text":"First, what we just did,"},{"Start":"00:40.470 ","End":"00:42.845","Text":"we could get each individual force,"},{"Start":"00:42.845 ","End":"00:44.660","Text":"find the work of that and add those."},{"Start":"00:44.660 ","End":"00:48.200","Text":"In our example we would add WF,"},{"Start":"00:48.200 ","End":"00:50.700","Text":"which is root 3 F,"},{"Start":"00:50.700 ","End":"00:55.825","Text":"and add to that negative Mu_k M_g times 2."},{"Start":"00:55.825 ","End":"00:57.935","Text":"The other way to do that is to 1st,"},{"Start":"00:57.935 ","End":"01:01.010","Text":"add the vectors of the different forces and come up with"},{"Start":"01:01.010 ","End":"01:04.940","Text":"some summed vector from the addition of the 2 vectors."},{"Start":"01:04.940 ","End":"01:08.330","Text":"It would probably point in our case in this direction,"},{"Start":"01:08.330 ","End":"01:10.151","Text":"up in a little bit to the left."},{"Start":"01:10.151 ","End":"01:11.990","Text":"It would have a given magnitude."},{"Start":"01:11.990 ","End":"01:13.220","Text":"We could calculate it if we wanted,"},{"Start":"01:13.220 ","End":"01:15.920","Text":"and that should give us the same answer."},{"Start":"01:15.920 ","End":"01:20.900","Text":"Both methods work, usually we\u0027ll find the work of each force and summarize that way."},{"Start":"01:20.900 ","End":"01:22.820","Text":"Just to give a quick recap."},{"Start":"01:22.820 ","End":"01:27.080","Text":"This is the end of our discussion of work on a constant force."},{"Start":"01:27.080 ","End":"01:30.290","Text":"What you do is take the magnitude of the force times"},{"Start":"01:30.290 ","End":"01:35.010","Text":"the length of the displacement times the cosine of the angle between the 2."}],"ID":9316}],"Thumbnail":null,"ID":5419},{"Name":"Explanation About the Integral of Work","TopicPlaylistFirstVideoID":0,"Duration":null,"Videos":[{"Watched":false,"Name":"Basic Explanation","Duration":"3m 58s","ChapterTopicVideoID":9044,"CourseChapterTopicPlaylistID":5420,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.080 ","End":"00:02.505","Text":"Hello. In this video,"},{"Start":"00:02.505 ","End":"00:05.325","Text":"I want to look closer at the integral of the work"},{"Start":"00:05.325 ","End":"00:09.045","Text":"from A to B and see what\u0027s really going on here."},{"Start":"00:09.045 ","End":"00:12.930","Text":"The first thing I want to do is draw 2 axes an x and"},{"Start":"00:12.930 ","End":"00:16.815","Text":"y-axis and on the x and y-axis, I\u0027m going to have 2 points."},{"Start":"00:16.815 ","End":"00:19.290","Text":"The first A will be here,"},{"Start":"00:19.290 ","End":"00:24.300","Text":"and the second and B will draw farther out over here."},{"Start":"00:24.300 ","End":"00:29.100","Text":"Now I\u0027m going to have some object that\u0027s trajectory somehow gets from A to B."},{"Start":"00:29.100 ","End":"00:31.395","Text":"It can be a squiggly line like this."},{"Start":"00:31.395 ","End":"00:33.120","Text":"What does work do?"},{"Start":"00:33.120 ","End":"00:34.410","Text":"What does work measure?"},{"Start":"00:34.410 ","End":"00:39.030","Text":"Work is if we were to break this line down into all of its little pieces,"},{"Start":"00:39.030 ","End":"00:41.150","Text":"imagine each of the dotted lines,"},{"Start":"00:41.150 ","End":"00:43.250","Text":"its own small segment."},{"Start":"00:43.250 ","End":"00:46.925","Text":"Then we can think of each one as a point of dr."},{"Start":"00:46.925 ","End":"00:53.470","Text":"The direction of each dr segment is always tangential to the trajectory."},{"Start":"00:53.470 ","End":"00:58.700","Text":"Each of these tangential lines in the direction of the trajectory,"},{"Start":"00:58.700 ","End":"01:00.470","Text":"we can do each one in red,"},{"Start":"01:00.470 ","End":"01:02.000","Text":"make up the entire line."},{"Start":"01:02.000 ","End":"01:04.145","Text":"When we do the work function,"},{"Start":"01:04.145 ","End":"01:08.330","Text":"we\u0027re breaking up our trajectory into a ton of small little lines,"},{"Start":"01:08.330 ","End":"01:11.440","Text":"each tangential to the trajectory of the object."},{"Start":"01:11.440 ","End":"01:15.365","Text":"I can now look at any given point along this line."},{"Start":"01:15.365 ","End":"01:18.245","Text":"Let\u0027s say we choose a random point in the middle here,"},{"Start":"01:18.245 ","End":"01:22.025","Text":"and the next step is to find the force at that moment."},{"Start":"01:22.025 ","End":"01:24.080","Text":"To see what the force is at the moment,"},{"Start":"01:24.080 ","End":"01:27.155","Text":"let\u0027s say here it\u0027s a vector in that direction,"},{"Start":"01:27.155 ","End":"01:29.465","Text":"sets the force, and before doing the integral,"},{"Start":"01:29.465 ","End":"01:33.295","Text":"you do scalar multiplication with dr."},{"Start":"01:33.295 ","End":"01:36.260","Text":"When I do this scalar multiplication,"},{"Start":"01:36.260 ","End":"01:40.685","Text":"what I\u0027m doing is multiplying the element of the force times"},{"Start":"01:40.685 ","End":"01:45.545","Text":"the dr times the cosine of the angle between the 2 of them."},{"Start":"01:45.545 ","End":"01:50.585","Text":"Another way to look at it is I\u0027m taking the element in the direction of dr,"},{"Start":"01:50.585 ","End":"01:53.150","Text":"of the force, and multiplying it by dr."},{"Start":"01:53.150 ","End":"01:54.740","Text":"If you see here,"},{"Start":"01:54.740 ","End":"02:00.380","Text":"we can imagine that dr is the x-axis and there\u0027s a perpendicular y-axis."},{"Start":"02:00.380 ","End":"02:03.695","Text":"I\u0027m going to ignore the element that\u0027s on the y-axis"},{"Start":"02:03.695 ","End":"02:07.055","Text":"and take the element that drops down to the x-axis,"},{"Start":"02:07.055 ","End":"02:09.985","Text":"that which is in the same direction as dr."},{"Start":"02:09.985 ","End":"02:14.315","Text":"I\u0027m ignoring the y element of the vector F and I take the x element,"},{"Start":"02:14.315 ","End":"02:17.340","Text":"the element that\u0027s parallel to the trajectory."},{"Start":"02:17.340 ","End":"02:23.330","Text":"I\u0027m multiplying that by dr and afterwards I take an integral of this."},{"Start":"02:23.330 ","End":"02:26.870","Text":"What I\u0027m really doing is on any given point of this trajectory,"},{"Start":"02:26.870 ","End":"02:31.115","Text":"I\u0027m taking only the element of the force that\u0027s in the direction of the trajectory,"},{"Start":"02:31.115 ","End":"02:34.915","Text":"multiplying it by some infinitesimal element of dr."},{"Start":"02:34.915 ","End":"02:36.480","Text":"I can choose another point,"},{"Start":"02:36.480 ","End":"02:38.570","Text":"say here and if the F vector,"},{"Start":"02:38.570 ","End":"02:40.775","Text":"the force vector goes in that direction,"},{"Start":"02:40.775 ","End":"02:42.740","Text":"all I care about is the element of"},{"Start":"02:42.740 ","End":"02:45.350","Text":"the force vector that\u0027s in the direction of the trajectory."},{"Start":"02:45.350 ","End":"02:48.125","Text":"I multiply that by a small bit of length,"},{"Start":"02:48.125 ","End":"02:51.320","Text":"the dr and that\u0027s really what\u0027s happening when I do work."},{"Start":"02:51.320 ","End":"02:53.390","Text":"Isn\u0027t any given point I\u0027m taking"},{"Start":"02:53.390 ","End":"02:57.800","Text":"the element of the force that goes in the direction of the trajectory."},{"Start":"02:57.800 ","End":"03:03.949","Text":"What\u0027s interesting here is what work really does is it only measures"},{"Start":"03:03.949 ","End":"03:06.200","Text":"the element of the force going in the direction of"},{"Start":"03:06.200 ","End":"03:10.910","Text":"the trajectory and that\u0027s important because it measures the change in velocity."},{"Start":"03:10.910 ","End":"03:13.460","Text":"Now, if we have an object on this trajectory,"},{"Start":"03:13.460 ","End":"03:16.100","Text":"the only thing we\u0027re looking at is again,"},{"Start":"03:16.100 ","End":"03:18.680","Text":"the element of force and the direction of"},{"Start":"03:18.680 ","End":"03:21.575","Text":"the trajectory and that\u0027s what\u0027s going to change its velocity,"},{"Start":"03:21.575 ","End":"03:23.060","Text":"increase or decrease it."},{"Start":"03:23.060 ","End":"03:25.370","Text":"We ignore altogether the normal force,"},{"Start":"03:25.370 ","End":"03:30.755","Text":"the force going perpendicular to the object because we don\u0027t care about the direction."},{"Start":"03:30.755 ","End":"03:32.510","Text":"Work doesn\u0027t account for direction,"},{"Start":"03:32.510 ","End":"03:34.085","Text":"it doesn\u0027t care about direction."},{"Start":"03:34.085 ","End":"03:41.150","Text":"We only look at the tangential element of the force tangential to the trajectory."},{"Start":"03:41.150 ","End":"03:44.900","Text":"We only find how our velocity is changing."},{"Start":"03:44.900 ","End":"03:50.735","Text":"Put simply work finds how our force influences the velocity of an object,"},{"Start":"03:50.735 ","End":"03:53.420","Text":"not the direction, and just to reiterate,"},{"Start":"03:53.420 ","End":"03:58.620","Text":"that\u0027s why we only look at the element that is tangential to the trajectory."}],"ID":9317},{"Watched":false,"Name":"What is the Vector dr","Duration":"5m 12s","ChapterTopicVideoID":9045,"CourseChapterTopicPlaylistID":5420,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:04.649","Text":"I wanted to explain in more detail something I\u0027d mentioned earlier which is dr,"},{"Start":"00:04.649 ","End":"00:10.500","Text":"that line which we\u0027d said is always tangential to the trajectory of our object."},{"Start":"00:10.500 ","End":"00:12.705","Text":"To explain it, let\u0027s do the following."},{"Start":"00:12.705 ","End":"00:14.903","Text":"We have our same trajectory from A to B"},{"Start":"00:14.903 ","End":"00:18.960","Text":"and we have an object resting somewhere along it, and let\u0027s put it here."},{"Start":"00:18.960 ","End":"00:24.720","Text":"Right there, okay, That\u0027ll be point C. We want to have the position vector at point"},{"Start":"00:24.720 ","End":"00:30.480","Text":"C. The position vector r goes from the origin to the point where the object is resting."},{"Start":"00:30.480 ","End":"00:33.675","Text":"That\u0027s our new vector r,"},{"Start":"00:33.675 ","End":"00:35.035","Text":"the position vector,"},{"Start":"00:35.035 ","End":"00:40.005","Text":"and let\u0027s say it\u0027s at time t along our trajectory."},{"Start":"00:40.005 ","End":"00:49.700","Text":"Now, if I want to have a new position vector at a new point let\u0027s say dt seconds later,"},{"Start":"00:49.700 ","End":"00:52.162","Text":"dt is just some random amount of time later,"},{"Start":"00:52.162 ","End":"00:54.805","Text":"that will be rt plus dt."},{"Start":"00:54.805 ","End":"00:57.785","Text":"That\u0027ll go to the new position of the object."},{"Start":"00:57.785 ","End":"01:00.690","Text":"It\u0027s moved to here, let\u0027s say in that amount of time."},{"Start":"01:00.690 ","End":"01:07.000","Text":"Rt plus dt will go from the origin to that new point right there."},{"Start":"01:07.000 ","End":"01:11.105","Text":"Let\u0027s say I want to find the difference between the 2 points,"},{"Start":"01:11.105 ","End":"01:13.175","Text":"rt and rt plus dt,"},{"Start":"01:13.175 ","End":"01:17.940","Text":"that would be dr and what I\u0027m looking for is the change."},{"Start":"01:17.940 ","End":"01:20.900","Text":"If you recall from earlier talks we\u0027ve said that when you\u0027re talking about"},{"Start":"01:20.900 ","End":"01:23.880","Text":"change you want to take the final minus the initial,"},{"Start":"01:23.880 ","End":"01:28.160","Text":"so rt plus dt minus rt."},{"Start":"01:28.160 ","End":"01:35.600","Text":"When you do the subtraction what you\u0027ll find is taking rt plus dt minus rt,"},{"Start":"01:35.600 ","End":"01:39.125","Text":"and I\u0027ll write this out in blue here so it\u0027s a little more visible,"},{"Start":"01:39.125 ","End":"01:42.905","Text":"we\u0027ll give you a vector of dr that looks like this."},{"Start":"01:42.905 ","End":"01:44.180","Text":"In fact, as you can see,"},{"Start":"01:44.180 ","End":"01:46.445","Text":"it\u0027s tangential to the trajectory here."},{"Start":"01:46.445 ","End":"01:52.280","Text":"Again, rt plus dr will also give us rt plus dt."},{"Start":"01:52.280 ","End":"01:56.120","Text":"You can write this anyway but this is dr,"},{"Start":"01:56.120 ","End":"01:59.995","Text":"and that\u0027s how it ends up being tangential to the trajectory."},{"Start":"01:59.995 ","End":"02:03.455","Text":"Now this line looks tangential although it\u0027s actually not,"},{"Start":"02:03.455 ","End":"02:08.735","Text":"but if you took dt down to 0 and had an infinitesimally small dr it would"},{"Start":"02:08.735 ","End":"02:15.100","Text":"actually be truly tangential to the trajectory of our object and that\u0027s how you get dr."},{"Start":"02:15.100 ","End":"02:19.700","Text":"If we look at dr from a mathematical perspective,"},{"Start":"02:19.700 ","End":"02:22.285","Text":"rt plus dt minus rt,"},{"Start":"02:22.285 ","End":"02:26.185","Text":"we can see that it\u0027s actually a differential."},{"Start":"02:26.185 ","End":"02:28.130","Text":"We\u0027re taking a differential of"},{"Start":"02:28.130 ","End":"02:33.215","Text":"the vector r. Let\u0027s take this a step back and we can write the vector r,"},{"Start":"02:33.215 ","End":"02:36.800","Text":"the position vector in a different way."},{"Start":"02:36.800 ","End":"02:39.845","Text":"We can write it as x in the direction of x,"},{"Start":"02:39.845 ","End":"02:44.180","Text":"that\u0027s x-hat plus y in the direction of y,"},{"Start":"02:44.180 ","End":"02:49.075","Text":"that\u0027s y-hat, plus z in the direction of z, that z-hat."},{"Start":"02:49.075 ","End":"02:56.135","Text":"Another way we can write that at least in Cartesian coordinates is r=x, y, z."},{"Start":"02:56.135 ","End":"03:00.485","Text":"Now we know that both of these are true ways to represent"},{"Start":"03:00.485 ","End":"03:05.026","Text":"the position vector coming from the origin no matter what that vector is."},{"Start":"03:05.026 ","End":"03:06.880","Text":"It\u0027s a general formula."},{"Start":"03:06.880 ","End":"03:08.880","Text":"We can take that a step further,"},{"Start":"03:08.880 ","End":"03:10.760","Text":"and if we\u0027re writing the differential we can write"},{"Start":"03:10.760 ","End":"03:12.920","Text":"the differential in a general formula that"},{"Start":"03:12.920 ","End":"03:17.615","Text":"applies to all situations regardless of what\u0027s going on by saying that dr,"},{"Start":"03:17.615 ","End":"03:24.825","Text":"the differential of the vector r equals dx, x-hat,"},{"Start":"03:24.825 ","End":"03:26.136","Text":"that\u0027s the direction of x,"},{"Start":"03:26.136 ","End":"03:28.715","Text":"plus dy in the direction of y,"},{"Start":"03:28.715 ","End":"03:34.440","Text":"y-hat, plus dz in the direction of z, z-hat."},{"Start":"03:34.790 ","End":"03:37.955","Text":"This is a general formula for dr."},{"Start":"03:37.955 ","End":"03:40.415","Text":"It\u0027s always true, so dr always equal"},{"Start":"03:40.415 ","End":"03:43.850","Text":"dx in the direction of x plus dy in the direction of y,"},{"Start":"03:43.850 ","End":"03:46.060","Text":"and dz in the direction of z."},{"Start":"03:46.060 ","End":"03:48.305","Text":"Because this is generally true,"},{"Start":"03:48.305 ","End":"03:52.430","Text":"we can apply in all situations including the situation above with work."},{"Start":"03:52.430 ","End":"03:58.100","Text":"We can write our work formula instead of as it is now in the following format."},{"Start":"03:58.100 ","End":"04:07.195","Text":"We can write it as F_xdx plus F_ydy plus F_zdz all as an integral from A-B."},{"Start":"04:07.195 ","End":"04:10.190","Text":"These two are identical they mean the exact same thing,"},{"Start":"04:10.190 ","End":"04:13.310","Text":"they equal the exact same thing and we can show that by showing"},{"Start":"04:13.310 ","End":"04:16.505","Text":"the vector F. Now vectors have a general formula."},{"Start":"04:16.505 ","End":"04:20.810","Text":"In this case for F it would be F_x x-hat plus F_y,"},{"Start":"04:20.810 ","End":"04:24.825","Text":"y-hat plus F_z, z-hat."},{"Start":"04:24.825 ","End":"04:30.715","Text":"If we took a scalar multiplication of the vector f by dr,"},{"Start":"04:30.715 ","End":"04:32.750","Text":"that is the differential of r,"},{"Start":"04:32.750 ","End":"04:34.025","Text":"our position vector,"},{"Start":"04:34.025 ","End":"04:35.780","Text":"we multiply x by x,"},{"Start":"04:35.780 ","End":"04:38.315","Text":"y by y and z by z."},{"Start":"04:38.315 ","End":"04:41.150","Text":"Of course, the x and y multiplied by each other would"},{"Start":"04:41.150 ","End":"04:44.990","Text":"0 out and we end up with the formula that\u0027s on our left."},{"Start":"04:44.990 ","End":"04:47.510","Text":"You end up with F_xdx,"},{"Start":"04:47.510 ","End":"04:50.515","Text":"F_ydy, and F_zdz."},{"Start":"04:50.515 ","End":"04:52.410","Text":"This is a formula you should remember,"},{"Start":"04:52.410 ","End":"04:54.067","Text":"so we\u0027ll put it in red."},{"Start":"04:54.067 ","End":"04:57.800","Text":"You should remember that both are acceptable,"},{"Start":"04:57.800 ","End":"05:01.300","Text":"but the last way we wrote it is sometimes more popular."},{"Start":"05:01.300 ","End":"05:04.370","Text":"The next question of course is how do we use this formula?"},{"Start":"05:04.370 ","End":"05:07.160","Text":"What do we do with it, and what function does it perform?"},{"Start":"05:07.160 ","End":"05:10.050","Text":"For that, we\u0027ll look at the next video."}],"ID":9318}],"Thumbnail":null,"ID":5420},{"Name":"How to Calculate the Integral of a non Constant Force","TopicPlaylistFirstVideoID":0,"Duration":null,"Videos":[{"Watched":false,"Name":"Explanation and Formula","Duration":"1m 20s","ChapterTopicVideoID":9214,"CourseChapterTopicPlaylistID":5421,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:02.070","Text":"Hello. In this video,"},{"Start":"00:02.070 ","End":"00:06.210","Text":"we\u0027re going to calculate the work of a non-constant force."},{"Start":"00:06.210 ","End":"00:10.395","Text":"What we\u0027re really doing is this is truly finding the integral of work."},{"Start":"00:10.395 ","End":"00:13.110","Text":"To remind you, work from 1 point to another,"},{"Start":"00:13.110 ","End":"00:18.210","Text":"in our example we\u0027ll do from A to B is going to equal the integral from"},{"Start":"00:18.210 ","End":"00:25.905","Text":"point A to point B of the force F.dr."},{"Start":"00:25.905 ","End":"00:29.655","Text":"This is the formula for work between the points A and B."},{"Start":"00:29.655 ","End":"00:32.310","Text":"You have to remember that between these two points there are"},{"Start":"00:32.310 ","End":"00:35.220","Text":"an infinite number of trajectories we could follow,"},{"Start":"00:35.220 ","End":"00:37.095","Text":"so we need to know what our trajectory is."},{"Start":"00:37.095 ","End":"00:38.925","Text":"It could be straight like so,"},{"Start":"00:38.925 ","End":"00:41.235","Text":"it could be a little more curved and indirect."},{"Start":"00:41.235 ","End":"00:42.480","Text":"It could really be anything,"},{"Start":"00:42.480 ","End":"00:44.510","Text":"but the point is we need to know what"},{"Start":"00:44.510 ","End":"00:47.500","Text":"our trajectory is if we\u0027re going to calculate the work,"},{"Start":"00:47.500 ","End":"00:49.565","Text":"so this is the second thing we need to know."},{"Start":"00:49.565 ","End":"00:52.205","Text":"What trajectory are we following?"},{"Start":"00:52.205 ","End":"00:55.460","Text":"I can take this formula and rewrite it in"},{"Start":"00:55.460 ","End":"00:58.265","Text":"a different way that can be a little useful for us."},{"Start":"00:58.265 ","End":"01:04.770","Text":"The work from points A to B equals the integral from point A to B"},{"Start":"01:04.770 ","End":"01:12.790","Text":"of Fx dx plus Fy dy plus Fz dz."},{"Start":"01:12.940 ","End":"01:16.820","Text":"This is essentially the product of F.dr."},{"Start":"01:16.820 ","End":"01:21.180","Text":"Dr is the differential of the position vector."}],"ID":9484}],"Thumbnail":null,"ID":5421},{"Name":"Deriving Work And Energy Equations","TopicPlaylistFirstVideoID":0,"Duration":null,"Videos":[{"Watched":false,"Name":"Part 1- The Work of the Net Force Equals the Sum of the Work of Each Force Individually","Duration":"3m 53s","ChapterTopicVideoID":9046,"CourseChapterTopicPlaylistID":5422,"HasSubtitles":true,"ThumbnailPath":"https://www.proprep.uk/Images/Videos_Thumbnails/9046.jpeg","UploadDate":"2017-03-22T09:58:03.8630000","DurationForVideoObject":"PT3M53S","Description":null,"MetaTitle":"Part 1- The Work of the Net Force Equals the Sum of the Work of Each Force Individually: Video + Workbook | Proprep","MetaDescription":"Work and Energy - Deriving Work and Energy Equations. Watch the video made by an expert in the field. Download the workbook and maximize your learning.","Canonical":"https://www.proprep.uk/general-modules/all/physics-1-mechanics-waves-and-thermodynamics/work-and-energy/deriving-work-and-energy-equations/vid9319","VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:02.070","Text":"In this set of lectures,"},{"Start":"00:02.070 ","End":"00:04.650","Text":"we\u0027re going to try to understand how we get to"},{"Start":"00:04.650 ","End":"00:08.174","Text":"the equation for the work of the non-conservative forces."},{"Start":"00:08.174 ","End":"00:11.970","Text":"If you recall, the work of the non-conservative forces,"},{"Start":"00:11.970 ","End":"00:16.110","Text":"W_NC equals the change in total energy,"},{"Start":"00:16.110 ","End":"00:20.355","Text":"Delta E. This is the equation that we\u0027re going to try to come to in the end."},{"Start":"00:20.355 ","End":"00:22.845","Text":"Well, this is only background information."},{"Start":"00:22.845 ","End":"00:25.170","Text":"I think it\u0027s critical that you listened because it can be really"},{"Start":"00:25.170 ","End":"00:29.055","Text":"helpful for you to understand what\u0027s going on behind the scene."},{"Start":"00:29.055 ","End":"00:31.205","Text":"In this part of the lecture,"},{"Start":"00:31.205 ","End":"00:34.850","Text":"we\u0027re going to prove that the work of the net force equals the sum of"},{"Start":"00:34.850 ","End":"00:38.640","Text":"the work of each force individually. What does that mean?"},{"Start":"00:38.640 ","End":"00:42.440","Text":"Well, on the 1 hand, we have the work of the net force,"},{"Start":"00:42.440 ","End":"00:44.164","Text":"that is the sum of all forces."},{"Start":"00:44.164 ","End":"00:47.794","Text":"We take that, and then we calculate the work for the sum of all forces,"},{"Start":"00:47.794 ","End":"00:53.630","Text":"that Sigma F. That equals the sum of the work of each force individually."},{"Start":"00:53.630 ","End":"00:55.235","Text":"We\u0027ll call that Fi."},{"Start":"00:55.235 ","End":"01:01.595","Text":"Let\u0027s assume that you have some object with 2 forces acting on it, F_1 and F_2."},{"Start":"01:01.595 ","End":"01:03.275","Text":"F_1 goes to the right,"},{"Start":"01:03.275 ","End":"01:06.650","Text":"and F_2 goes upwards and towards the left."},{"Start":"01:06.650 ","End":"01:10.790","Text":"Now we can find the work of these 2 forces in 2 different ways."},{"Start":"01:10.790 ","End":"01:16.120","Text":"The first is to find the work of F_1 and add that to the work of F_2,"},{"Start":"01:16.120 ","End":"01:18.665","Text":"and that equals the right side of our equation above"},{"Start":"01:18.665 ","End":"01:21.530","Text":"the sum of the work of each force individually."},{"Start":"01:21.530 ","End":"01:23.690","Text":"We take the work of each force individually,"},{"Start":"01:23.690 ","End":"01:25.265","Text":"and then we find the sum."},{"Start":"01:25.265 ","End":"01:29.450","Text":"The other way we can do it is find the addition of these 2 forces."},{"Start":"01:29.450 ","End":"01:30.920","Text":"First, it\u0027d be somewhere in the middle,"},{"Start":"01:30.920 ","End":"01:32.615","Text":"probably something like this."},{"Start":"01:32.615 ","End":"01:36.470","Text":"We can call that F_T for F total because it\u0027s the sum of both forces,"},{"Start":"01:36.470 ","End":"01:38.090","Text":"it\u0027s the total force."},{"Start":"01:38.090 ","End":"01:42.560","Text":"Now that we have F_T or the sum of forces or the net force,"},{"Start":"01:42.560 ","End":"01:44.315","Text":"we can get rid of F_1 and F_2."},{"Start":"01:44.315 ","End":"01:47.810","Text":"We don\u0027t need them anymore because we can perform the operation to"},{"Start":"01:47.810 ","End":"01:51.638","Text":"calculate the work of F_T or the sum or net force,"},{"Start":"01:51.638 ","End":"01:54.060","Text":"and it will have the exact same solution as if we"},{"Start":"01:54.060 ","End":"01:57.645","Text":"found the sum of each force individually."},{"Start":"01:57.645 ","End":"02:01.715","Text":"You can take the integral of the net force.dr,"},{"Start":"02:01.715 ","End":"02:05.430","Text":"or you can find the work of each force individually and add them up,"},{"Start":"02:05.430 ","End":"02:07.280","Text":"in either way they\u0027ll equal the same thing."},{"Start":"02:07.280 ","End":"02:10.160","Text":"It doesn\u0027t matter which way you do the operation."},{"Start":"02:10.160 ","End":"02:13.730","Text":"Now I\u0027d like to explore this in a little more depths."},{"Start":"02:13.730 ","End":"02:16.925","Text":"For those of you who feel that you intuitively understand this,"},{"Start":"02:16.925 ","End":"02:19.820","Text":"you don\u0027t necessarily need to watch the rest of the video."},{"Start":"02:19.820 ","End":"02:22.955","Text":"But I feel that it can still be a useful exercise."},{"Start":"02:22.955 ","End":"02:26.555","Text":"When we talk about the work of the net force,"},{"Start":"02:26.555 ","End":"02:29.030","Text":"what we need to do is perform the work operation,"},{"Start":"02:29.030 ","End":"02:33.935","Text":"which is to take the integral of the net force.dr."},{"Start":"02:33.935 ","End":"02:35.915","Text":"Now, when we say the net force,"},{"Start":"02:35.915 ","End":"02:38.305","Text":"it just means the sum of all forces."},{"Start":"02:38.305 ","End":"02:43.300","Text":"We can open this up and think of it as each force individually within the integral,"},{"Start":"02:43.300 ","End":"02:47.585","Text":"we take the integral of F_1 plus F_2."},{"Start":"02:47.585 ","End":"02:50.615","Text":"Each of these are vectors, plus F_3,"},{"Start":"02:50.615 ","End":"02:52.115","Text":"and so on and so forth,"},{"Start":"02:52.115 ","End":"02:54.580","Text":"until you reach the final force you\u0027re calculating."},{"Start":"02:54.580 ","End":"02:59.840","Text":"You can take all of those and multiply them by dr, scalar multiplication."},{"Start":"02:59.840 ","End":"03:02.765","Text":"With scalar multiplication using commutative property,"},{"Start":"03:02.765 ","End":"03:04.865","Text":"we can open up the parentheses."},{"Start":"03:04.865 ","End":"03:10.280","Text":"We can think of this as F_1 times dr or.dr plus the"},{"Start":"03:10.280 ","End":"03:15.875","Text":"integral of F_2.dr plus the integral of F_3,"},{"Start":"03:15.875 ","End":"03:20.210","Text":"etc, until we reach the final force that we\u0027re calculating."},{"Start":"03:20.210 ","End":"03:24.640","Text":"Each of these integrals is the formula for the work of an individual force."},{"Start":"03:24.640 ","End":"03:29.060","Text":"We have above the work of force 1 plus the work of force 2 etc,"},{"Start":"03:29.060 ","End":"03:30.785","Text":"until we get to our last force."},{"Start":"03:30.785 ","End":"03:34.685","Text":"Meaning that we have above the sum of the work of each force individually,"},{"Start":"03:34.685 ","End":"03:36.800","Text":"which is the right side of our equation before."},{"Start":"03:36.800 ","End":"03:39.650","Text":"So now we\u0027ve actually proven that the work of"},{"Start":"03:39.650 ","End":"03:44.165","Text":"the net force equals the sum of the work of each force individually."},{"Start":"03:44.165 ","End":"03:47.105","Text":"We\u0027re going to need to use this later. Let\u0027s hold on to it."},{"Start":"03:47.105 ","End":"03:50.885","Text":"Remember this, and we\u0027ll come back to it when we get later on in our formula."},{"Start":"03:50.885 ","End":"03:53.730","Text":"For now, let\u0027s move on to Part B."}],"ID":9319},{"Watched":false,"Name":"Part 2- The Work of the Net Force Equals the Change in Kinetic Energy","Duration":"10m 2s","ChapterTopicVideoID":9047,"CourseChapterTopicPlaylistID":5422,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.080 ","End":"00:02.760","Text":"In this part of the video,"},{"Start":"00:02.760 ","End":"00:05.850","Text":"I want to show how the work of the net force"},{"Start":"00:05.850 ","End":"00:10.005","Text":"equals the change in kinetic energy in a given object."},{"Start":"00:10.005 ","End":"00:13.020","Text":"Let\u0027s assume that we have some object,"},{"Start":"00:13.020 ","End":"00:15.360","Text":"could be that same box from before,"},{"Start":"00:15.360 ","End":"00:16.920","Text":"and we have some number of forces,"},{"Start":"00:16.920 ","End":"00:18.622","Text":"1, 2, 10, a hundred,"},{"Start":"00:18.622 ","End":"00:20.190","Text":"it doesn\u0027t matter, but the sum of"},{"Start":"00:20.190 ","End":"00:23.295","Text":"those forces is pointing in the direction of the vector arrow."},{"Start":"00:23.295 ","End":"00:25.470","Text":"So the net force is that vector arrow."},{"Start":"00:25.470 ","End":"00:31.380","Text":"Now the work of the net force equals the change in kinetic energy, Delta E_k."},{"Start":"00:31.380 ","End":"00:35.865","Text":"Right now we\u0027re only talking about kinetic energy, not total energy."},{"Start":"00:35.865 ","End":"00:37.590","Text":"Total energy we\u0027ll talk about later,"},{"Start":"00:37.590 ","End":"00:40.425","Text":"but for now, we\u0027re only focusing on kinetic energy."},{"Start":"00:40.425 ","End":"00:44.660","Text":"This formula in itself can be remembered and put on your formula sheet if you\u0027d like."},{"Start":"00:44.660 ","End":"00:47.810","Text":"I personally prefer the formula we used in the last part,"},{"Start":"00:47.810 ","End":"00:52.085","Text":"that the work of the net force equals the change in total energy."},{"Start":"00:52.085 ","End":"00:54.050","Text":"But some people prefer this."},{"Start":"00:54.050 ","End":"00:58.520","Text":"First, I want to take an example where the net force is constant."},{"Start":"00:58.520 ","End":"01:03.950","Text":"We can write out the work of the net force in the classic way using an integral."},{"Start":"01:03.950 ","End":"01:11.845","Text":"The work of the net force equals the integral of the net force multiplied scalar by dr."},{"Start":"01:11.845 ","End":"01:13.250","Text":"But because it\u0027s constant,"},{"Start":"01:13.250 ","End":"01:15.185","Text":"we don\u0027t need the integral."},{"Start":"01:15.185 ","End":"01:17.525","Text":"We can write this as the net force,"},{"Start":"01:17.525 ","End":"01:19.640","Text":"scalar multiplied by Delta r,"},{"Start":"01:19.640 ","End":"01:21.140","Text":"which is the displacement."},{"Start":"01:21.140 ","End":"01:22.670","Text":"Now if you recall,"},{"Start":"01:22.670 ","End":"01:31.615","Text":"The net force can also be written using Newton\u0027s law as ma, mass times acceleration."},{"Start":"01:31.615 ","End":"01:41.359","Text":"We can replace that with ma dot Delta r. For the sake of simplicity,"},{"Start":"01:41.359 ","End":"01:46.055","Text":"let\u0027s assume that our object is moving in the direction of F. It starts here."},{"Start":"01:46.055 ","End":"01:48.650","Text":"Let\u0027s say that\u0027s the origin and it moves out in"},{"Start":"01:48.650 ","End":"01:51.680","Text":"the direction of F towards this point over here."},{"Start":"01:51.680 ","End":"01:59.090","Text":"We can draw the object over here so that the displacement will be something like that,"},{"Start":"01:59.090 ","End":"02:01.355","Text":"in the direction of F. Now,"},{"Start":"02:01.355 ","End":"02:05.005","Text":"we can do is we don\u0027t need to worry about the scalar multiplication."},{"Start":"02:05.005 ","End":"02:07.410","Text":"In a situation where this isn\u0027t the case,"},{"Start":"02:07.410 ","End":"02:10.565","Text":"let\u0027s say the initial velocity goes in a different direction,"},{"Start":"02:10.565 ","End":"02:13.460","Text":"then we\u0027re not going to worry about it right now but"},{"Start":"02:13.460 ","End":"02:17.315","Text":"essentially that velocity will continue in a constant form."},{"Start":"02:17.315 ","End":"02:22.180","Text":"Now we can change the scalar multiplication into a classic multiplication."},{"Start":"02:22.180 ","End":"02:25.385","Text":"We have ma times Delta r, the displacement."},{"Start":"02:25.385 ","End":"02:27.380","Text":"Now we can make this our x-axis."},{"Start":"02:27.380 ","End":"02:28.600","Text":"We can choose our axes."},{"Start":"02:28.600 ","End":"02:30.295","Text":"We can say this is the x-axis."},{"Start":"02:30.295 ","End":"02:32.230","Text":"This is the x-axis,"},{"Start":"02:32.230 ","End":"02:34.955","Text":"we can write out the whole formula as"},{"Start":"02:34.955 ","End":"02:41.075","Text":"ma_x times Delta x because we\u0027re moving along the x-axis."},{"Start":"02:41.075 ","End":"02:45.710","Text":"Now, this looks very similar to an equation from kinematics."},{"Start":"02:45.710 ","End":"02:49.835","Text":"The equation itself is v,"},{"Start":"02:49.835 ","End":"02:58.670","Text":"your velocity squared equals the initial velocity v_0^2 plus 2a Delta x."},{"Start":"02:58.670 ","End":"03:02.315","Text":"This formula works for each axis on its own."},{"Start":"03:02.315 ","End":"03:06.365","Text":"We can assume we\u0027re talking here about the x-axis and put an x\u0027s here."},{"Start":"03:06.365 ","End":"03:10.685","Text":"Now if we isolate a Delta x, we can replace it."},{"Start":"03:10.685 ","End":"03:14.000","Text":"We have on one side a Delta x and that"},{"Start":"03:14.000 ","End":"03:22.405","Text":"equals v_x^2 over 2 minus v initial x over 2."},{"Start":"03:22.405 ","End":"03:26.960","Text":"If we put that into our equation above ma_x Delta x."},{"Start":"03:26.960 ","End":"03:28.445","Text":"We can take our 1/2,"},{"Start":"03:28.445 ","End":"03:29.780","Text":"we can take r over 2,"},{"Start":"03:29.780 ","End":"03:37.385","Text":"and put on the side we have 1/2 times m v^2 minus v initial squared."},{"Start":"03:37.385 ","End":"03:43.055","Text":"Remember that v is the final velocity and v_0 is the initial velocity."},{"Start":"03:43.055 ","End":"03:47.960","Text":"When we have 1/2 m v^2 minus v initial squared,"},{"Start":"03:47.960 ","End":"03:51.140","Text":"what we really have is the change in kinetic energy."},{"Start":"03:51.140 ","End":"03:52.795","Text":"Because if you remember,"},{"Start":"03:52.795 ","End":"03:55.685","Text":"1/2 m v^2 equals kinetic energy."},{"Start":"03:55.685 ","End":"03:59.120","Text":"We\u0027re saying the final kinetic energy minus"},{"Start":"03:59.120 ","End":"04:02.870","Text":"the initial kinetic energy equals our change in kinetic energy."},{"Start":"04:02.870 ","End":"04:05.735","Text":"Now, this is of course on the x-axis only."},{"Start":"04:05.735 ","End":"04:07.205","Text":"But as we said before,"},{"Start":"04:07.205 ","End":"04:08.915","Text":"we\u0027re moving along the x-axis."},{"Start":"04:08.915 ","End":"04:13.165","Text":"There is no initial velocity and there is no final velocity in terms of y."},{"Start":"04:13.165 ","End":"04:14.480","Text":"Your y will drop out."},{"Start":"04:14.480 ","End":"04:16.070","Text":"There will be no velocity at all."},{"Start":"04:16.070 ","End":"04:18.275","Text":"You\u0027re left with only your x velocity."},{"Start":"04:18.275 ","End":"04:23.320","Text":"Therefore, what we have written here really equals the change in kinetic energy."},{"Start":"04:23.320 ","End":"04:28.805","Text":"By changing how we expressed our terms and using a small trick of Newton\u0027s second law,"},{"Start":"04:28.805 ","End":"04:34.580","Text":"we were able to prove that the work of the net force equals the change in kinetic energy."},{"Start":"04:34.580 ","End":"04:35.945","Text":"Now, this is a basic explanation."},{"Start":"04:35.945 ","End":"04:39.920","Text":"If anyone is interested in a more deep explanation of how this works,"},{"Start":"04:39.920 ","End":"04:41.480","Text":"please listen to the rest of the video."},{"Start":"04:41.480 ","End":"04:43.280","Text":"But for those who feel that this is enough,"},{"Start":"04:43.280 ","End":"04:45.725","Text":"you can stop here and skip the ending."},{"Start":"04:45.725 ","End":"04:47.420","Text":"I suggest listening to the ending,"},{"Start":"04:47.420 ","End":"04:49.235","Text":"but of course, it\u0027s your decision."},{"Start":"04:49.235 ","End":"04:50.990","Text":"On the right-hand side, I\u0027ll give"},{"Start":"04:50.990 ","End":"04:53.945","Text":"a more detailed explanation that might be a bit more exact."},{"Start":"04:53.945 ","End":"04:57.590","Text":"Let\u0027s assume we\u0027re finding the work of a non-constant force."},{"Start":"04:57.590 ","End":"05:05.570","Text":"The net force equals the integral of F or the net force dot dr."},{"Start":"05:05.570 ","End":"05:07.955","Text":"But of course, the net force is a force in every way,"},{"Start":"05:07.955 ","End":"05:09.530","Text":"so we can break it down into x,"},{"Start":"05:09.530 ","End":"05:10.860","Text":"y, and z components."},{"Start":"05:10.860 ","End":"05:20.835","Text":"We can write this as the integral of F_x dx plus the net force of y,"},{"Start":"05:20.835 ","End":"05:25.720","Text":"dy plus the net force of z, dz."},{"Start":"05:27.370 ","End":"05:30.755","Text":"Now we\u0027ll do the same trick we did before."},{"Start":"05:30.755 ","End":"05:32.555","Text":"Using Newton\u0027s second law."},{"Start":"05:32.555 ","End":"05:35.785","Text":"We\u0027ll replace each force with ma."},{"Start":"05:35.785 ","End":"05:44.840","Text":"We\u0027ll take out all the forces and be left with the following: the integral of ma_x,"},{"Start":"05:44.840 ","End":"05:48.605","Text":"dx plus ma_y,"},{"Start":"05:48.605 ","End":"05:53.495","Text":"dy plus ma_z, dz."},{"Start":"05:53.495 ","End":"05:55.670","Text":"Now we can do another trick."},{"Start":"05:55.670 ","End":"06:01.470","Text":"You know that acceleration equals dv over dt."},{"Start":"06:01.470 ","End":"06:06.800","Text":"So a_x equals dv_x over dt and the same for y and the same for z."},{"Start":"06:06.800 ","End":"06:10.370","Text":"We can replace all of our a\u0027s with dv over dt with"},{"Start":"06:10.370 ","End":"06:14.505","Text":"the respective sign and we can take our m to the outside."},{"Start":"06:14.505 ","End":"06:21.875","Text":"We have m times the integral of dv_x over dt times dx plus"},{"Start":"06:21.875 ","End":"06:32.010","Text":"dv_y over dt times dy plus dv_z over dt times dz."},{"Start":"06:32.270 ","End":"06:36.350","Text":"Now we\u0027re going to use a trick that some mathematicians are frowned upon,"},{"Start":"06:36.350 ","End":"06:39.520","Text":"but it\u0027s totally correct in terms of mathematic principles."},{"Start":"06:39.520 ","End":"06:41.790","Text":"We\u0027re going to talk about dv_x over"},{"Start":"06:41.790 ","End":"06:45.500","Text":"dt as though it\u0027s a normal quantity, not a differential."},{"Start":"06:45.500 ","End":"06:48.410","Text":"We\u0027re going to shift things around with dv_x,"},{"Start":"06:48.410 ","End":"06:51.275","Text":"dv_y, dv_z and it\u0027ll help us out."},{"Start":"06:51.275 ","End":"07:00.285","Text":"We can write this whole thing as m times the integral of dv_x times dx over dt."},{"Start":"07:00.285 ","End":"07:01.970","Text":"This is mathematically correct."},{"Start":"07:01.970 ","End":"07:08.330","Text":"We\u0027ve just moved things around a little plus dv_y times dy,"},{"Start":"07:08.330 ","End":"07:17.430","Text":"dt plus dv_z times dz over dt."},{"Start":"07:17.770 ","End":"07:20.225","Text":"Now that I\u0027ve rearranged things,"},{"Start":"07:20.225 ","End":"07:27.570","Text":"I can show that dx over dt equals v_x and dy over dt is v_y,"},{"Start":"07:27.570 ","End":"07:30.720","Text":"dz over dt is v_z."},{"Start":"07:30.720 ","End":"07:34.010","Text":"Even though this is an instance of division,"},{"Start":"07:34.010 ","End":"07:35.915","Text":"a division of something so small,"},{"Start":"07:35.915 ","End":"07:37.954","Text":"it turns into a derivative."},{"Start":"07:37.954 ","End":"07:42.590","Text":"We can write this as m and the integral of"},{"Start":"07:42.590 ","End":"07:51.640","Text":"v_x dv_x plus v_y dv_ y plus v_z dv_z."},{"Start":"07:51.640 ","End":"07:54.990","Text":"You can see that the v for each component is"},{"Start":"07:54.990 ","End":"07:57.780","Text":"paired with the dv for the same components: you have v_x,"},{"Start":"07:57.780 ","End":"08:01.770","Text":"with dv_x, v_y with dv_y, v_z for dv_z."},{"Start":"08:01.770 ","End":"08:05.225","Text":"Now when I perform the integral on v_x,"},{"Start":"08:05.225 ","End":"08:06.650","Text":"dv_x or v_y,"},{"Start":"08:06.650 ","End":"08:09.545","Text":"dv_y v_z, dv_z, etc."},{"Start":"08:09.545 ","End":"08:13.324","Text":"What I\u0027m left with is m on the outside."},{"Start":"08:13.324 ","End":"08:16.635","Text":"I\u0027m going to keep that on the outside. On the inside."},{"Start":"08:16.635 ","End":"08:21.530","Text":"I have v_x^2 over"},{"Start":"08:21.530 ","End":"08:29.390","Text":"2 and of course within the limits of v_x initial to v_x final."},{"Start":"08:29.390 ","End":"08:34.420","Text":"Plus the same for v_y, v_y^2 over 2."},{"Start":"08:34.420 ","End":"08:40.350","Text":"From the same limits, v_y initial to v_y final plus"},{"Start":"08:40.350 ","End":"08:49.575","Text":"v_z^2 over 2 from the limit of v_z initial to v_z final."},{"Start":"08:49.575 ","End":"08:54.335","Text":"You might already see that this is similar to the results on the left side."},{"Start":"08:54.335 ","End":"08:57.410","Text":"What we need to do is take our 1/2,"},{"Start":"08:57.410 ","End":"08:58.550","Text":"that\u0027s throughout our problem,"},{"Start":"08:58.550 ","End":"09:02.105","Text":"and take and put on the side with our m and put in our limits,"},{"Start":"09:02.105 ","End":"09:03.935","Text":"and we\u0027ll get the solution that we want."},{"Start":"09:03.935 ","End":"09:06.470","Text":"If we take our 1/2 out and put on the side,"},{"Start":"09:06.470 ","End":"09:14.985","Text":"we have 1/2 m times v final squared plus y final squared"},{"Start":"09:14.985 ","End":"09:20.520","Text":"plus v_z final squared minus"},{"Start":"09:20.520 ","End":"09:27.600","Text":"v_x initial squared minus v_y initial squared minus v_z initial squared."},{"Start":"09:27.600 ","End":"09:31.270","Text":"What you can see here is we really have the exact same thing we got before,"},{"Start":"09:31.270 ","End":"09:33.965","Text":"just with a more complicated process to get to it."},{"Start":"09:33.965 ","End":"09:38.630","Text":"Our end result is 1/2 of mv final squared,"},{"Start":"09:38.630 ","End":"09:40.790","Text":"which is our final kinetic energy,"},{"Start":"09:40.790 ","End":"09:45.350","Text":"minus 1/2 mv initial squared."},{"Start":"09:45.350 ","End":"09:47.300","Text":"That\u0027s our initial kinetic energy."},{"Start":"09:47.300 ","End":"09:52.130","Text":"We have the final kinetic energy minus the initial kinetic energy and that,"},{"Start":"09:52.130 ","End":"09:53.315","Text":"like we said before,"},{"Start":"09:53.315 ","End":"09:55.785","Text":"equals the difference in kinetic energy."},{"Start":"09:55.785 ","End":"09:58.730","Text":"Now we\u0027ve proven both ways that the work of"},{"Start":"09:58.730 ","End":"10:03.030","Text":"the net force equals the change in kinetic energy."}],"ID":9320},{"Watched":false,"Name":"Part 3- Reaching the Formula","Duration":"7m 23s","ChapterTopicVideoID":9048,"CourseChapterTopicPlaylistID":5422,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:02.400","Text":"In this part of the lecture,"},{"Start":"00:02.400 ","End":"00:04.065","Text":"I want to reach the formula,"},{"Start":"00:04.065 ","End":"00:06.735","Text":"the final formula for the work energy theorem."},{"Start":"00:06.735 ","End":"00:09.450","Text":"If you recall, that is that the work of"},{"Start":"00:09.450 ","End":"00:13.740","Text":"the non-conservative forces equals the change in total energy."},{"Start":"00:13.740 ","End":"00:18.075","Text":"We\u0027re going to do this using the things that we found in our last few lectures."},{"Start":"00:18.075 ","End":"00:20.655","Text":"For those who saw, for those who didn\u0027t,"},{"Start":"00:20.655 ","End":"00:23.790","Text":"here\u0027s a little bit of a review of the conclusions we came to."},{"Start":"00:23.790 ","End":"00:26.070","Text":"First, we said that the work of"},{"Start":"00:26.070 ","End":"00:31.725","Text":"the net force equals the sum of the work of each force individually."},{"Start":"00:31.725 ","End":"00:34.350","Text":"We could have 1 force, we could have 2 forces."},{"Start":"00:34.350 ","End":"00:35.910","Text":"We could really have any amount of forces,"},{"Start":"00:35.910 ","End":"00:37.410","Text":"but we can sum them all up,"},{"Start":"00:37.410 ","End":"00:41.265","Text":"and will equal the same thing as the work of the net force."},{"Start":"00:41.265 ","End":"00:48.050","Text":"Secondly, we found that the work of the net force equals the change in kinetic energy."},{"Start":"00:48.050 ","End":"00:49.385","Text":"Only kinetic energy."},{"Start":"00:49.385 ","End":"00:51.170","Text":"We\u0027re not talking about total energy."},{"Start":"00:51.170 ","End":"00:53.675","Text":"This is important and we\u0027ll incorporate it here as well."},{"Start":"00:53.675 ","End":"00:56.030","Text":"The last thing is something we talked about when"},{"Start":"00:56.030 ","End":"00:58.400","Text":"talking about the conservation of energy earlier."},{"Start":"00:58.400 ","End":"01:04.490","Text":"That was that the work of the conservative forces."},{"Start":"01:04.490 ","End":"01:08.315","Text":"Those are the forces that have conservation of energy."},{"Start":"01:08.315 ","End":"01:13.385","Text":"That equals the opposite of the change in potential energy."},{"Start":"01:13.385 ","End":"01:16.300","Text":"That is negative change in potential energy."},{"Start":"01:16.300 ","End":"01:20.930","Text":"Once again, the work of the conservative forces, and I\u0027ll write this here,"},{"Start":"01:20.930 ","End":"01:26.690","Text":"conservative equals negative Delta U."},{"Start":"01:26.690 ","End":"01:30.540","Text":"If any of these assumptions is not clear to you,"},{"Start":"01:30.540 ","End":"01:31.816","Text":"or you don\u0027t agree with them,"},{"Start":"01:31.816 ","End":"01:35.690","Text":"for now assume that they\u0027re true and watch this video then you can go back to"},{"Start":"01:35.690 ","End":"01:37.700","Text":"the other videos to make sure that you"},{"Start":"01:37.700 ","End":"01:41.730","Text":"understand the material on all this background information."},{"Start":"01:41.750 ","End":"01:47.030","Text":"Each of these conclusions is a tool that I\u0027m going to use to find my formula,"},{"Start":"01:47.030 ","End":"01:48.545","Text":"to reach the formula."},{"Start":"01:48.545 ","End":"01:53.555","Text":"What I need to do is finally reach W and C equals Delta"},{"Start":"01:53.555 ","End":"01:58.790","Text":"E. So the first step I\u0027m going to take is set out the formula below that."},{"Start":"01:58.790 ","End":"02:05.440","Text":"W sigma F equals Delta E_k."},{"Start":"02:05.440 ","End":"02:11.140","Text":"That is that the work of the net force equals the change in kinetic energy."},{"Start":"02:11.140 ","End":"02:14.555","Text":"Now I can replace W sigma F,"},{"Start":"02:14.555 ","End":"02:16.910","Text":"that is the work of the net force using"},{"Start":"02:16.910 ","End":"02:21.250","Text":"my second formula with the some of the work of each force individually."},{"Start":"02:21.250 ","End":"02:25.335","Text":"It would be the work of force 1 plus the work of force 2,"},{"Start":"02:25.335 ","End":"02:27.315","Text":"plus the work of force 3,"},{"Start":"02:27.315 ","End":"02:32.275","Text":"etc., equals Delta E_k."},{"Start":"02:32.275 ","End":"02:35.380","Text":"That is the change in kinetic energy."},{"Start":"02:35.380 ","End":"02:38.750","Text":"Again, I\u0027ll calculate the work of each force,"},{"Start":"02:38.750 ","End":"02:41.120","Text":"take the sum of all of those calculations,"},{"Start":"02:41.120 ","End":"02:43.640","Text":"and that will be equal to Delta Ek."},{"Start":"02:43.640 ","End":"02:46.610","Text":"Now if I\u0027m dealing with the work of all of my forces,"},{"Start":"02:46.610 ","End":"02:50.845","Text":"I know that some of my forces will be conservative and some will not."},{"Start":"02:50.845 ","End":"02:54.680","Text":"Let\u0027s say we split our forces here arbitrarily in this case,"},{"Start":"02:54.680 ","End":"02:59.570","Text":"but it works for the example into the conservative forces will be F_1 and F_2."},{"Start":"02:59.570 ","End":"03:07.010","Text":"These are C for conservative and F_3 through however many forces I have until F_n,"},{"Start":"03:07.010 ","End":"03:10.655","Text":"let\u0027s say our non-conservative NC."},{"Start":"03:10.655 ","End":"03:14.690","Text":"Now what I need to do here is remember my last formula,"},{"Start":"03:14.690 ","End":"03:16.880","Text":"the fourth formula from above."},{"Start":"03:16.880 ","End":"03:20.480","Text":"If you recall, the forces that are"},{"Start":"03:20.480 ","End":"03:24.620","Text":"conservative equal the opposite of the change in potential energy,"},{"Start":"03:24.620 ","End":"03:26.420","Text":"that is negative Delta U."},{"Start":"03:26.420 ","End":"03:28.550","Text":"On the right-hand side here,"},{"Start":"03:28.550 ","End":"03:31.040","Text":"I\u0027m going to rewrite this in a slightly different way."},{"Start":"03:31.040 ","End":"03:38.980","Text":"I\u0027m going to write this as negative Delta u_1 minus Delta u_2."},{"Start":"03:38.980 ","End":"03:41.195","Text":"These are from my forces that are conservative,"},{"Start":"03:41.195 ","End":"03:45.500","Text":"plus W_F_3 etc.,"},{"Start":"03:45.500 ","End":"03:47.810","Text":"for all of my non-conservative forces."},{"Start":"03:47.810 ","End":"03:51.135","Text":"This is equal to Delta E_k,"},{"Start":"03:51.135 ","End":"03:52.580","Text":"the change in kinetic energy."},{"Start":"03:52.580 ","End":"03:55.235","Text":"All I have done is replaced by conservative forces"},{"Start":"03:55.235 ","End":"03:58.490","Text":"with the change in potential energy that they represent."},{"Start":"03:58.490 ","End":"03:59.750","Text":"Now I\u0027m going to take all of"},{"Start":"03:59.750 ","End":"04:03.575","Text":"those potential energies and put them on the right side of the problem."},{"Start":"04:03.575 ","End":"04:06.035","Text":"I\u0027m left with W_F_3 etc.,"},{"Start":"04:06.035 ","End":"04:11.540","Text":"on my non-conservative forces equal Delta E_k plus Delta U."},{"Start":"04:11.540 ","End":"04:15.605","Text":"To remind you, Delta E_k equals"},{"Start":"04:15.605 ","End":"04:23.270","Text":"the final kinetic energy Ek_f minus Ek_i the initial kinetic energy."},{"Start":"04:23.270 ","End":"04:26.809","Text":"And of course, Delta U equals"},{"Start":"04:26.809 ","End":"04:32.430","Text":"the final potential energy minus the initial potential energy UF minus UI."},{"Start":"04:32.430 ","End":"04:35.750","Text":"I can rewrite this in a slightly different way than that order,"},{"Start":"04:35.750 ","End":"04:37.460","Text":"but I\u0027ll reorder it as follows."},{"Start":"04:37.460 ","End":"04:38.885","Text":"Take all my final things,"},{"Start":"04:38.885 ","End":"04:48.265","Text":"Ek_f plus U_f and subtract from them the initial things, Ek_i and U_i."},{"Start":"04:48.265 ","End":"04:53.810","Text":"I can put this in parentheses and say Ek_i plus U_i in parentheses and subtract it."},{"Start":"04:53.810 ","End":"04:58.865","Text":"Now we have is the work of the non-conservative forces equals everything on the right."},{"Start":"04:58.865 ","End":"05:01.595","Text":"The potential and kinetic energy of the final moment"},{"Start":"05:01.595 ","End":"05:04.345","Text":"minus the potential and kinetic energy of the initial moment."},{"Start":"05:04.345 ","End":"05:08.735","Text":"Now we can start talking about total energy, total mechanical energy."},{"Start":"05:08.735 ","End":"05:11.240","Text":"If you recall, the formula for"},{"Start":"05:11.240 ","End":"05:15.380","Text":"total mechanical energy is kinetic energy plus potential energy."},{"Start":"05:15.380 ","End":"05:19.400","Text":"You see here that we have 2 sets of kinetic plus potential energy."},{"Start":"05:19.400 ","End":"05:21.170","Text":"Let\u0027s write out this formula."},{"Start":"05:21.170 ","End":"05:25.460","Text":"Total energy equals kinetic energy plus potential energy."},{"Start":"05:25.460 ","End":"05:33.100","Text":"What we have here is the final total energy minus the initial total energy."},{"Start":"05:33.100 ","End":"05:36.590","Text":"If you see final minus initial,"},{"Start":"05:36.590 ","End":"05:39.590","Text":"that\u0027s a hint to you that we\u0027re talking about a change of some sort."},{"Start":"05:39.590 ","End":"05:41.990","Text":"This equals the change in total energy."},{"Start":"05:41.990 ","End":"05:48.870","Text":"We can now do is rewrite this whole equation as the work of F_3 and onwards."},{"Start":"05:48.870 ","End":"05:51.215","Text":"That is the non-conservative forces"},{"Start":"05:51.215 ","End":"05:55.955","Text":"equals the change in total energy. Let\u0027s write that out."},{"Start":"05:55.955 ","End":"05:59.720","Text":"W_NC that is the non-conservative work,"},{"Start":"05:59.720 ","End":"06:03.005","Text":"equals Delta E_t,"},{"Start":"06:03.005 ","End":"06:05.660","Text":"the change in total energy."},{"Start":"06:05.660 ","End":"06:08.630","Text":"We have a change in total energy because"},{"Start":"06:08.630 ","End":"06:11.545","Text":"the final kinetic energy minus the initial kinetic energy,"},{"Start":"06:11.545 ","End":"06:15.430","Text":"and the final potential energy minus the initial potential energy."},{"Start":"06:15.430 ","End":"06:18.110","Text":"These are the 2 elements of total energy."},{"Start":"06:18.110 ","End":"06:21.685","Text":"What does the work energy theorem mean for us?"},{"Start":"06:21.685 ","End":"06:25.855","Text":"Well, it\u0027s a way of switching back and forth between these 2 red formulas,"},{"Start":"06:25.855 ","End":"06:27.790","Text":"the formulas in red boxes."},{"Start":"06:27.790 ","End":"06:32.710","Text":"The work of the net force is a good way of showing us the change in kinetic energy."},{"Start":"06:32.710 ","End":"06:35.560","Text":"But we can also then separate our forces into"},{"Start":"06:35.560 ","End":"06:38.200","Text":"conservative and non-conservative forces and take"},{"Start":"06:38.200 ","End":"06:41.725","Text":"the conservative forces that equal negative Delta U"},{"Start":"06:41.725 ","End":"06:46.105","Text":"and move them from the left side of the equation to the right side of the equation."},{"Start":"06:46.105 ","End":"06:48.280","Text":"Now we have our potential energy and"},{"Start":"06:48.280 ","End":"06:50.875","Text":"our kinetic energy on the right side of the equation,"},{"Start":"06:50.875 ","End":"06:54.080","Text":"and we can put them together to find Delta E_t,"},{"Start":"06:54.080 ","End":"06:56.020","Text":"the change in total energy."},{"Start":"06:56.020 ","End":"06:58.550","Text":"Once we have the change in total energy,"},{"Start":"06:58.550 ","End":"07:01.715","Text":"we can calculate just the non-conservative forces."},{"Start":"07:01.715 ","End":"07:03.860","Text":"There\u0027s your solution, there\u0027s your explanation,"},{"Start":"07:03.860 ","End":"07:05.645","Text":"and that\u0027s how we reached the formula."},{"Start":"07:05.645 ","End":"07:07.985","Text":"For those who understand the mathematics,"},{"Start":"07:07.985 ","End":"07:09.800","Text":"I think it\u0027s a really good way to get"},{"Start":"07:09.800 ","End":"07:12.370","Text":"a better understanding of what\u0027s happening in general."},{"Start":"07:12.370 ","End":"07:13.760","Text":"If you\u0027re up for it,"},{"Start":"07:13.760 ","End":"07:17.690","Text":"I think you should try to develop the formulas to this point on your own."},{"Start":"07:17.690 ","End":"07:20.690","Text":"It can be a very good exercise that will increase your understanding."},{"Start":"07:20.690 ","End":"07:24.120","Text":"That\u0027s the end of the explanation. Thanks for listening."}],"ID":9321}],"Thumbnail":null,"ID":5422},{"Name":"Calculating Conservative Forces From Potential Energy","TopicPlaylistFirstVideoID":0,"Duration":null,"Videos":[{"Watched":false,"Name":"Conservative Force and Potential Energy","Duration":"3m 21s","ChapterTopicVideoID":9049,"CourseChapterTopicPlaylistID":5423,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:06.285","Text":"Hello. Now we\u0027re going to talk about conservative forces and potential energy."},{"Start":"00:06.285 ","End":"00:08.295","Text":"What is a conservative force?"},{"Start":"00:08.295 ","End":"00:10.935","Text":"Well, conservative force has 3 main characteristics."},{"Start":"00:10.935 ","End":"00:17.985","Text":"First, the force of the work is not dependent on the trajectory."},{"Start":"00:17.985 ","End":"00:22.545","Text":"That means that if we\u0027re going from point A to point B over here,"},{"Start":"00:22.545 ","End":"00:25.560","Text":"it doesn\u0027t matter how we get from point A to point B."},{"Start":"00:25.560 ","End":"00:30.315","Text":"We can go straight or we can go in some whirling path like so."},{"Start":"00:30.315 ","End":"00:34.860","Text":"The calculation of the work will not change,"},{"Start":"00:34.860 ","End":"00:36.770","Text":"will always be the same."},{"Start":"00:36.770 ","End":"00:38.990","Text":"When I\u0027m talking about the calculation of the work,"},{"Start":"00:38.990 ","End":"00:40.520","Text":"what I mean is that W,"},{"Start":"00:40.520 ","End":"00:45.535","Text":"the work equals the integral on the force times dr,"},{"Start":"00:45.535 ","End":"00:48.510","Text":"and of course, this is from point A to point B so"},{"Start":"00:48.510 ","End":"00:51.930","Text":"I\u0027m talking about the work from point A to point B."},{"Start":"00:51.930 ","End":"00:54.680","Text":"Our first characteristic is that it\u0027s a force where"},{"Start":"00:54.680 ","End":"00:57.919","Text":"the work is not dependent on the trajectory."},{"Start":"00:57.919 ","End":"01:00.950","Text":"The second characteristic is that it\u0027s a force where"},{"Start":"01:00.950 ","End":"01:04.670","Text":"the work of a trajectory that goes back to the initial point."},{"Start":"01:04.670 ","End":"01:07.390","Text":"From A to A would equal 0."},{"Start":"01:07.390 ","End":"01:12.990","Text":"In this case, where we have a trajectory going from A back to A, the work equals 0."},{"Start":"01:13.730 ","End":"01:18.950","Text":"These are your first 2 characteristics of a conservative force."},{"Start":"01:18.950 ","End":"01:20.660","Text":"Our last characteristic of"},{"Start":"01:20.660 ","End":"01:24.545","Text":"a conservative force is that it\u0027s a force with potential energy."},{"Start":"01:24.545 ","End":"01:28.805","Text":"I\u0027m not going to explain yet how we find the potential energy of a conservative force."},{"Start":"01:28.805 ","End":"01:31.430","Text":"But let\u0027s talk about it in terms of an example."},{"Start":"01:31.430 ","End":"01:34.805","Text":"Let\u0027s say that you have a F=mg,"},{"Start":"01:34.805 ","End":"01:39.410","Text":"that is the force of gravity times mass."},{"Start":"01:39.410 ","End":"01:42.155","Text":"Now if we\u0027re talking about our potential energy,"},{"Start":"01:42.155 ","End":"01:43.490","Text":"which we write as U,"},{"Start":"01:43.490 ","End":"01:50.270","Text":"U_ g=mg times h. H is the height above the ground."},{"Start":"01:50.270 ","End":"01:55.565","Text":"You may be asking why this is important and it basically helps us with a shortcut."},{"Start":"01:55.565 ","End":"01:59.090","Text":"A conservative force is defined by,"},{"Start":"01:59.090 ","End":"02:01.070","Text":"again these 3 characteristics."},{"Start":"02:01.070 ","End":"02:03.500","Text":"One of which is that it\u0027s only defined by"},{"Start":"02:03.500 ","End":"02:06.430","Text":"its initial point and its final point or terminal point."},{"Start":"02:06.430 ","End":"02:09.530","Text":"Meaning we don\u0027t care necessarily about the trajectory itself."},{"Start":"02:09.530 ","End":"02:17.180","Text":"Instead of taking a derivative of the force that is to find our work,"},{"Start":"02:17.180 ","End":"02:21.065","Text":"what we can do is instead think of the work from A to B"},{"Start":"02:21.065 ","End":"02:25.580","Text":"in terms of the negative change in the potential energy."},{"Start":"02:25.580 ","End":"02:27.290","Text":"How do we calculate that?"},{"Start":"02:27.290 ","End":"02:31.340","Text":"It\u0027s negative UB, which is the potential energy at B,"},{"Start":"02:31.340 ","End":"02:33.380","Text":"the terminal point, minus UA,"},{"Start":"02:33.380 ","End":"02:35.680","Text":"the potential energy at the initial point."},{"Start":"02:35.680 ","End":"02:37.400","Text":"In the case of conservative force,"},{"Start":"02:37.400 ","End":"02:39.920","Text":"I don\u0027t have to calculate my work in the classic way,"},{"Start":"02:39.920 ","End":"02:42.650","Text":"I can use this formula, negative UB,"},{"Start":"02:42.650 ","End":"02:46.550","Text":"meaning my potential energy at the final point minus UA,"},{"Start":"02:46.550 ","End":"02:50.750","Text":"my potential energy at the initial point equals w equals the work."},{"Start":"02:50.750 ","End":"02:54.080","Text":"This is one of our formulas that we should save so let\u0027s put"},{"Start":"02:54.080 ","End":"02:57.500","Text":"it in a red box and you should put this on your formula sheet."},{"Start":"02:57.500 ","End":"03:02.540","Text":"Now, 1 more conservative force that\u0027s important to know is the elastic force."},{"Start":"03:02.540 ","End":"03:06.650","Text":"This is the force of a spring and it\u0027s defined as negative"},{"Start":"03:06.650 ","End":"03:11.045","Text":"k Delta x. Delta x is the elongation of the spring,"},{"Start":"03:11.045 ","End":"03:21.550","Text":"how far it can extend and the potential energy is defined as 1.5k Delta x^2."}],"ID":9322},{"Watched":false,"Name":"The Force as a Gradient of Potential Energy","Duration":"3m 24s","ChapterTopicVideoID":9050,"CourseChapterTopicPlaylistID":5423,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:04.875","Text":"What\u0027s the relationship between force and potential energy?"},{"Start":"00:04.875 ","End":"00:08.010","Text":"Well, there\u0027s a formula that will help us understand this."},{"Start":"00:08.010 ","End":"00:10.575","Text":"The formula will go in our formula sheet."},{"Start":"00:10.575 ","End":"00:12.040","Text":"We\u0027ll put it in red here."},{"Start":"00:12.040 ","End":"00:13.565","Text":"It is as follows."},{"Start":"00:13.565 ","End":"00:20.540","Text":"F, the force, equals negative gradient times u. I\u0027ll explain that in a second,"},{"Start":"00:20.540 ","End":"00:24.785","Text":"but for now just let\u0027s remember the formula and put it into our formula sheet."},{"Start":"00:24.785 ","End":"00:29.360","Text":"If you recall, a gradient is a directional derivative."},{"Start":"00:29.360 ","End":"00:32.420","Text":"We take partial derivatives for each of the components x,"},{"Start":"00:32.420 ","End":"00:34.205","Text":"y, and z, and it looks like this."},{"Start":"00:34.205 ","End":"00:40.970","Text":"F equals the negative partial derivative of u/x, that\u0027s the x-component,"},{"Start":"00:40.970 ","End":"00:44.210","Text":"x-hat minus the partial derivative of"},{"Start":"00:44.210 ","End":"00:50.470","Text":"u/y y hat minus the partial derivative of u/z z-hat."},{"Start":"00:50.470 ","End":"00:54.340","Text":"That will give us each component of our force."},{"Start":"00:54.340 ","End":"00:56.960","Text":"Of course, this is for Cartesian coordinates."},{"Start":"00:56.960 ","End":"01:01.415","Text":"There\u0027s a slightly different formula for cylindrical and spherical coordinates,"},{"Start":"01:01.415 ","End":"01:03.140","Text":"which is already on your formula sheet,"},{"Start":"01:03.140 ","End":"01:04.715","Text":"but we\u0027ll deal with that later."},{"Start":"01:04.715 ","End":"01:08.690","Text":"Generally, what you see here is that we\u0027re getting each variable,"},{"Start":"01:08.690 ","End":"01:10.415","Text":"x, y, and z isolated."},{"Start":"01:10.415 ","End":"01:12.680","Text":"If we want just the x variable, for example,"},{"Start":"01:12.680 ","End":"01:15.305","Text":"we do the partial derivative of u/x,"},{"Start":"01:15.305 ","End":"01:18.890","Text":"and that would give us our x variable for Fx."},{"Start":"01:18.890 ","End":"01:22.880","Text":"If we wanted Fy, we would do partial derivative of u/y."},{"Start":"01:22.880 ","End":"01:25.030","Text":"Most of the time,"},{"Start":"01:25.030 ","End":"01:28.330","Text":"my potential energy will only be dependent on 1 variable,"},{"Start":"01:28.330 ","End":"01:30.860","Text":"so then we can just do a derivative of"},{"Start":"01:30.860 ","End":"01:34.770","Text":"that 1 variable instead of doing partial derivatives of each element."},{"Start":"01:34.770 ","End":"01:39.335","Text":"For example, if my potential energy was dependent on x,"},{"Start":"01:39.335 ","End":"01:42.785","Text":"then I would just do a derivative of x to find my answer."},{"Start":"01:42.785 ","End":"01:45.680","Text":"We can look at the example of the potential energy of"},{"Start":"01:45.680 ","End":"01:50.130","Text":"gravity to give us a better understanding of this."},{"Start":"01:50.380 ","End":"01:54.650","Text":"U=mgh, and we\u0027ll set h=y because gravity works vertically."},{"Start":"01:54.650 ","End":"02:00.450","Text":"We have some mass resting y above another surface and it could fall."},{"Start":"02:00.450 ","End":"02:01.970","Text":"The force is equal to"},{"Start":"02:01.970 ","End":"02:06.980","Text":"the negative derivative of u/y, because we don\u0027t have to deal with x,"},{"Start":"02:06.980 ","End":"02:08.000","Text":"we don\u0027t have to deal with z,"},{"Start":"02:08.000 ","End":"02:10.220","Text":"it\u0027s just the derivative of u/y,"},{"Start":"02:10.220 ","End":"02:15.150","Text":"of course, negative, so that equals negative mgy-hat."},{"Start":"02:15.150 ","End":"02:17.930","Text":"What you end up with is potential downwards energy."},{"Start":"02:17.930 ","End":"02:20.600","Text":"You can see the same thing for the potential elastic energy,"},{"Start":"02:20.600 ","End":"02:24.125","Text":"if you recall the formula is 1/2k times Delta x^2."},{"Start":"02:24.125 ","End":"02:27.170","Text":"Delta x is really some point x minus another"},{"Start":"02:27.170 ","End":"02:30.965","Text":"initial point x where your spring is entirely limp."},{"Start":"02:30.965 ","End":"02:33.200","Text":"If this is our spring,"},{"Start":"02:33.200 ","End":"02:37.550","Text":"there\u0027s some point x_0 where the spring is totally limp,"},{"Start":"02:37.550 ","End":"02:41.195","Text":"and there\u0027s another point x where it is now."},{"Start":"02:41.195 ","End":"02:44.545","Text":"That distance is how much it can elongate."},{"Start":"02:44.545 ","End":"02:47.070","Text":"When we do the derivative,"},{"Start":"02:47.070 ","End":"02:49.070","Text":"it\u0027s only in terms of x, we don\u0027t have to deal with y,"},{"Start":"02:49.070 ","End":"02:50.450","Text":"we don\u0027t have to deal with z."},{"Start":"02:50.450 ","End":"02:55.190","Text":"What we\u0027re left with is the force equals the negative derivative of u/x."},{"Start":"02:55.190 ","End":"03:00.020","Text":"What that equals, once our 1/2 and power of 2 fall out when we do the procedure,"},{"Start":"03:00.020 ","End":"03:03.645","Text":"is negative k times x minus x_0,"},{"Start":"03:03.645 ","End":"03:05.070","Text":"which is the change in x."},{"Start":"03:05.070 ","End":"03:07.235","Text":"We get negative k Delta x,"},{"Start":"03:07.235 ","End":"03:09.365","Text":"which is our formula on the left."},{"Start":"03:09.365 ","End":"03:11.930","Text":"Just to recap, we\u0027ve proven here is we can take"},{"Start":"03:11.930 ","End":"03:15.530","Text":"the negative gradient of the potential energy to find our force."},{"Start":"03:15.530 ","End":"03:17.090","Text":"Of course, in most situations,"},{"Start":"03:17.090 ","End":"03:21.715","Text":"that just means a simple derivative in the direction of x or y or whatever it may be."},{"Start":"03:21.715 ","End":"03:24.430","Text":"That\u0027s the short explanation for now."}],"ID":9323}],"Thumbnail":null,"ID":5423},{"Name":"How To Check If A Force Is Conservative","TopicPlaylistFirstVideoID":0,"Duration":null,"Videos":[{"Watched":false,"Name":"Explanation","Duration":"3m 22s","ChapterTopicVideoID":9051,"CourseChapterTopicPlaylistID":5424,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:01.695","Text":"Hello. In this video,"},{"Start":"00:01.695 ","End":"00:06.645","Text":"I\u0027m going to discuss how we check if a force in a given equation is a conservative force."},{"Start":"00:06.645 ","End":"00:10.590","Text":"Now the way you do it is with the following mathematical equation."},{"Start":"00:10.590 ","End":"00:12.435","Text":"You take your curl equation,"},{"Start":"00:12.435 ","End":"00:15.675","Text":"which if you recall is the nabla times the force,"},{"Start":"00:15.675 ","End":"00:17.685","Text":"and set it equal to 0."},{"Start":"00:17.685 ","End":"00:23.205","Text":"If you\u0027re curl or rotor rotation equal 0 then you have a conservative force."},{"Start":"00:23.205 ","End":"00:27.990","Text":"Setting the rotor or curl function equal to 0 is"},{"Start":"00:27.990 ","End":"00:32.610","Text":"by far the most common way of checking if we have a conservative force."},{"Start":"00:32.610 ","End":"00:36.195","Text":"That has to do with the definition of a conservative force."},{"Start":"00:36.195 ","End":"00:39.930","Text":"If you recall 3 possible characteristics of a conservative force."},{"Start":"00:39.930 ","End":"00:43.770","Text":"The 1st was that in a trajectory from A to B,"},{"Start":"00:43.770 ","End":"00:46.155","Text":"the work is not depended on the trajectory."},{"Start":"00:46.155 ","End":"00:50.420","Text":"The 2nd was that in a closed trajectory, the work equals 0."},{"Start":"00:50.420 ","End":"00:55.445","Text":"Now neither of these is a good way to check if we have a conservative force."},{"Start":"00:55.445 ","End":"01:00.410","Text":"Because even if we check 1 trajectory or 100 trajectories there\u0027s still"},{"Start":"01:00.410 ","End":"01:03.230","Text":"infinite possibilities out there and we can\u0027t be 100 percent"},{"Start":"01:03.230 ","End":"01:07.130","Text":"certain that every single trajectory equals 0."},{"Start":"01:07.130 ","End":"01:10.490","Text":"The 2nd way we can determine whether we have"},{"Start":"01:10.490 ","End":"01:14.150","Text":"a conservative force is if we know that there\u0027s potential energy."},{"Start":"01:14.150 ","End":"01:17.360","Text":"If you recall that\u0027s the 3rd characteristic of a conservative force,"},{"Start":"01:17.360 ","End":"01:19.280","Text":"is a force of potential energy."},{"Start":"01:19.280 ","End":"01:21.590","Text":"Now, if we can prove that we have"},{"Start":"01:21.590 ","End":"01:24.370","Text":"potential energy and we\u0027ll talk about that in the next lecture."},{"Start":"01:24.370 ","End":"01:27.065","Text":"Or if we\u0027re given that there\u0027s potential energy,"},{"Start":"01:27.065 ","End":"01:31.520","Text":"we can therefore determine that we have a conservative force."},{"Start":"01:31.520 ","End":"01:35.125","Text":"But for now, let\u0027s focus on this mathematical method."},{"Start":"01:35.125 ","End":"01:39.395","Text":"How are we going to do this mathematical operation?"},{"Start":"01:39.395 ","End":"01:42.230","Text":"What I want to do is actually paste here"},{"Start":"01:42.230 ","End":"01:45.320","Text":"a set of formulas from Wikipedia that students generally use."},{"Start":"01:45.320 ","End":"01:48.530","Text":"This might be helpful for you in the future."},{"Start":"01:48.530 ","End":"01:52.640","Text":"Here\u0027s the table that may be a little intimidating, but bear with me."},{"Start":"01:52.640 ","End":"01:56.420","Text":"You can tell that we have a few different operations here,"},{"Start":"01:56.420 ","End":"01:59.770","Text":"and we have them described in different coordinate systems."},{"Start":"01:59.770 ","End":"02:04.190","Text":"While we may sometimes use spherical coordinates and cylindrical coordinates for now,"},{"Start":"02:04.190 ","End":"02:07.295","Text":"let\u0027s focus on Cartesian coordinates it\u0027s what will use most."},{"Start":"02:07.295 ","End":"02:09.950","Text":"You can see that A is our vector field,"},{"Start":"02:09.950 ","End":"02:11.510","Text":"meaning it has x,"},{"Start":"02:11.510 ","End":"02:13.070","Text":"y, and z dimensions."},{"Start":"02:13.070 ","End":"02:19.310","Text":"In Cartesian coordinates or in cylindrical coordinates it could be in terms of r,"},{"Start":"02:19.310 ","End":"02:21.140","Text":"c, and z."},{"Start":"02:21.140 ","End":"02:23.240","Text":"You see the gradient function,"},{"Start":"02:23.240 ","End":"02:24.965","Text":"we\u0027re not interested in that at the moment."},{"Start":"02:24.965 ","End":"02:26.600","Text":"We see the divergence function,"},{"Start":"02:26.600 ","End":"02:29.105","Text":"we\u0027re not interested in that at the moment either."},{"Start":"02:29.105 ","End":"02:33.350","Text":"Below you have the curl function and that\u0027s what we\u0027re going to talk about now."},{"Start":"02:33.350 ","End":"02:37.020","Text":"Just to reiterate curl and rotor mean the same thing."},{"Start":"02:37.020 ","End":"02:41.390","Text":"If you see 1 or the other they\u0027re interchangeable don\u0027t be confused by that."},{"Start":"02:41.390 ","End":"02:44.195","Text":"Now, in our example we used F,"},{"Start":"02:44.195 ","End":"02:45.595","Text":"here they\u0027re using A."},{"Start":"02:45.595 ","End":"02:47.640","Text":"They mean the same thing essentially."},{"Start":"02:47.640 ","End":"02:49.940","Text":"What we\u0027re going to do is multiply these in"},{"Start":"02:49.940 ","End":"02:53.180","Text":"partial differentials by our different coordinates to get our answers."},{"Start":"02:53.180 ","End":"02:55.495","Text":"For the x coordinate it\u0027s going to be partial d, a,"},{"Start":"02:55.495 ","End":"02:58.280","Text":"z over partial y,"},{"Start":"02:58.280 ","End":"03:00.665","Text":"minus partial d,"},{"Start":"03:00.665 ","End":"03:02.570","Text":"a, y over partial z."},{"Start":"03:02.570 ","End":"03:07.255","Text":"You can see how it continues with the y and with the z coordinates."},{"Start":"03:07.255 ","End":"03:12.530","Text":"Just a quick note on this sheet you\u0027ll see in cylindrical coordinates, 1 over rho."},{"Start":"03:12.530 ","End":"03:14.060","Text":"Just a reminder in our course,"},{"Start":"03:14.060 ","End":"03:16.490","Text":"we\u0027re calling that r. We\u0027re calling that variable r,"},{"Start":"03:16.490 ","End":"03:18.860","Text":"so it will be 1 over r. Let\u0027s"},{"Start":"03:18.860 ","End":"03:22.500","Text":"look at an example and see how we can solve a problem like this."}],"ID":9324},{"Watched":false,"Name":"Example","Duration":"1m 45s","ChapterTopicVideoID":9052,"CourseChapterTopicPlaylistID":5424,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:04.290","Text":"In this example, we\u0027re given the force F,"},{"Start":"00:04.290 ","End":"00:08.460","Text":"which is 2xy in the direction of x plus"},{"Start":"00:08.460 ","End":"00:13.620","Text":"(x^2+z) in the direction of y plus y in the direction of z."},{"Start":"00:13.620 ","End":"00:17.205","Text":"We need to determine if it\u0027s a conservative force."},{"Start":"00:17.205 ","End":"00:20.610","Text":"The way we do that is with our Curl function,"},{"Start":"00:20.610 ","End":"00:22.050","Text":"as you can see listed here,"},{"Start":"00:22.050 ","End":"00:24.435","Text":"and we just need to do the operation."},{"Start":"00:24.435 ","End":"00:26.145","Text":"So let\u0027s jump right into it."},{"Start":"00:26.145 ","End":"00:28.710","Text":"For our x element, we\u0027ll do the following."},{"Start":"00:28.710 ","End":"00:31.260","Text":"We will take dA_z/dy,"},{"Start":"00:31.260 ","End":"00:35.478","Text":"and that accounts for the y in our z element that equals 1."},{"Start":"00:35.478 ","End":"00:39.000","Text":"We\u0027re subtract from that dA_y/dz,"},{"Start":"00:39.000 ","End":"00:41.516","Text":"that is the z\u0027s in our y-direction."},{"Start":"00:41.516 ","End":"00:43.865","Text":"That also equals 1, that zeroes out."},{"Start":"00:43.865 ","End":"00:46.670","Text":"Now, this is a good time to mention that every element has to"},{"Start":"00:46.670 ","End":"00:50.465","Text":"individually even out because each of these coordinates,"},{"Start":"00:50.465 ","End":"00:53.000","Text":"x, y, and z, represents a different direction."},{"Start":"00:53.000 ","End":"00:55.040","Text":"If 1 direction equals more than 0,"},{"Start":"00:55.040 ","End":"00:57.245","Text":"then the whole equation doesn\u0027t equal 0."},{"Start":"00:57.245 ","End":"01:01.430","Text":"Moving on to our y portion, we add that in,"},{"Start":"01:01.430 ","End":"01:03.415","Text":"as you can see here,"},{"Start":"01:03.415 ","End":"01:09.180","Text":"and we\u0027re going to do dA_x/dz, that equals 0."},{"Start":"01:09.180 ","End":"01:13.785","Text":"Similarly, dA_z/dx equals 0."},{"Start":"01:13.785 ","End":"01:16.370","Text":"So that obviously will zero out,"},{"Start":"01:16.370 ","End":"01:18.170","Text":"and we\u0027re 2/3 of our way there."},{"Start":"01:18.170 ","End":"01:19.880","Text":"Now we add our z element in,"},{"Start":"01:19.880 ","End":"01:24.260","Text":"that\u0027s dA_y/dx and that equals 2x."},{"Start":"01:24.260 ","End":"01:27.395","Text":"We\u0027re going to subtract from that dA_x/dy,"},{"Start":"01:27.395 ","End":"01:29.695","Text":"that also equals 2x,"},{"Start":"01:29.695 ","End":"01:31.865","Text":"and that zeroes out as well."},{"Start":"01:31.865 ","End":"01:33.965","Text":"We can do our full calculation,"},{"Start":"01:33.965 ","End":"01:36.365","Text":"x, y, and z each equal 0."},{"Start":"01:36.365 ","End":"01:40.089","Text":"We can determine that this is in fact a conservative force."},{"Start":"01:40.089 ","End":"01:41.255","Text":"That\u0027s it."},{"Start":"01:41.255 ","End":"01:45.360","Text":"That\u0027s an example to go with your explanation. It\u0027s that simple."}],"ID":9325}],"Thumbnail":null,"ID":5424},{"Name":"Calculating Potential Energy From Conservative Forces","TopicPlaylistFirstVideoID":0,"Duration":null,"Videos":[{"Watched":false,"Name":"Explanation","Duration":"2m 32s","ChapterTopicVideoID":9036,"CourseChapterTopicPlaylistID":5425,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:02.475","Text":"Hello. In this video,"},{"Start":"00:02.475 ","End":"00:06.645","Text":"I want to find the potential energy of a conservative force."},{"Start":"00:06.645 ","End":"00:10.245","Text":"This is something you may be familiar with from mathematics classes."},{"Start":"00:10.245 ","End":"00:17.020","Text":"In math class, they\u0027ll often call it finding the indefinite integral of the force."},{"Start":"00:17.120 ","End":"00:22.335","Text":"First things first, you have to make sure that you in fact have a conservative force."},{"Start":"00:22.335 ","End":"00:25.050","Text":"If you don\u0027t have a conservative force, this is irrelevant."},{"Start":"00:25.050 ","End":"00:28.620","Text":"The way to check if you have a conservative force is to take"},{"Start":"00:28.620 ","End":"00:32.400","Text":"the rotor of the force and check if that equals 0."},{"Start":"00:32.400 ","End":"00:35.090","Text":"In general, exercises dealing with"},{"Start":"00:35.090 ","End":"00:39.080","Text":"the potential energy of conservative forces will first ask you to verify this."},{"Start":"00:39.080 ","End":"00:41.360","Text":"It\u0027s important to remember how to do this."},{"Start":"00:41.360 ","End":"00:44.585","Text":"Once you know that you have a conservative force,"},{"Start":"00:44.585 ","End":"00:49.640","Text":"you can then try to find what the potential energy of that conservative force is."},{"Start":"00:49.640 ","End":"00:52.265","Text":"Remember, potential energy is signified with U,"},{"Start":"00:52.265 ","End":"00:55.025","Text":"so to find out what U equals."},{"Start":"00:55.025 ","End":"00:58.160","Text":"The whole point of this lecture is to solve for U."},{"Start":"00:58.160 ","End":"01:00.455","Text":"It\u0027s a little more complicated than it looks."},{"Start":"01:00.455 ","End":"01:02.015","Text":"To be honest, it seems simple,"},{"Start":"01:02.015 ","End":"01:04.160","Text":"but there\u0027s a few steps that can be complicated,"},{"Start":"01:04.160 ","End":"01:06.125","Text":"so please pay close attention."},{"Start":"01:06.125 ","End":"01:09.620","Text":"The first thing to note is that the relationship between"},{"Start":"01:09.620 ","End":"01:13.190","Text":"the force and the potential energy is such that"},{"Start":"01:13.190 ","End":"01:14.960","Text":"the force has to equal"},{"Start":"01:14.960 ","End":"01:20.875","Text":"the negative gradient of the potential energy, negative gradient U."},{"Start":"01:20.875 ","End":"01:23.780","Text":"Now what we want to do is extrapolate out"},{"Start":"01:23.780 ","End":"01:26.225","Text":"the gradient and write it in terms of each component,"},{"Start":"01:26.225 ","End":"01:28.055","Text":"x, y, and z."},{"Start":"01:28.055 ","End":"01:30.095","Text":"We can write it as follows."},{"Start":"01:30.095 ","End":"01:36.990","Text":"F equals negative du/dx in the direction of x,"},{"Start":"01:36.990 ","End":"01:41.280","Text":"plus du/dy in the direction of y,"},{"Start":"01:41.280 ","End":"01:45.615","Text":"and du/dz in the direction of z."},{"Start":"01:45.615 ","End":"01:49.565","Text":"In fact, we\u0027re now taking something that was a scalar multiplication,"},{"Start":"01:49.565 ","End":"01:52.910","Text":"something without direction, and we\u0027ve given it direction in terms of x,"},{"Start":"01:52.910 ","End":"01:55.270","Text":"y, and z, Cartesian coordinates."},{"Start":"01:55.270 ","End":"01:57.500","Text":"Now we can take each of these x,"},{"Start":"01:57.500 ","End":"01:59.990","Text":"y, and z and write in terms of the force."},{"Start":"01:59.990 ","End":"02:03.185","Text":"There\u0027s a force of x, force of y, and a force of z."},{"Start":"02:03.185 ","End":"02:08.240","Text":"The force of x equals du/d/x."},{"Start":"02:08.240 ","End":"02:12.585","Text":"The force of z equals negative du/dy,"},{"Start":"02:12.585 ","End":"02:14.930","Text":"and of course, the negative applies to the x as well."},{"Start":"02:14.930 ","End":"02:21.430","Text":"F_z equals negative du/dz."},{"Start":"02:21.430 ","End":"02:25.130","Text":"Now we can see the relationship between the force and the energy."},{"Start":"02:25.130 ","End":"02:28.190","Text":"From here, what I\u0027ll do is use an example to show how"},{"Start":"02:28.190 ","End":"02:32.310","Text":"we find the potential energy of a conservative force."}],"ID":9309},{"Watched":false,"Name":"Example","Duration":"7m 39s","ChapterTopicVideoID":9037,"CourseChapterTopicPlaylistID":5425,"HasSubtitles":true,"ThumbnailPath":null,"UploadDate":null,"DurationForVideoObject":null,"Description":null,"MetaTitle":null,"MetaDescription":null,"Canonical":null,"VideoComments":[],"Subtitles":[{"Start":"00:00.000 ","End":"00:04.620","Text":"In our example, you\u0027re asked to find the potential energy of the force"},{"Start":"00:04.620 ","End":"00:09.165","Text":"F equals negative 2xy in the direction of x,"},{"Start":"00:09.165 ","End":"00:14.415","Text":"plus 2 minus (x^2) in the direction of y."},{"Start":"00:14.415 ","End":"00:18.285","Text":"You\u0027re given that the energy at 0,0,"},{"Start":"00:18.285 ","End":"00:20.160","Text":"the origin equals 0."},{"Start":"00:20.160 ","End":"00:23.205","Text":"For now, we\u0027re going to forget about this given piece of data,"},{"Start":"00:23.205 ","End":"00:24.645","Text":"we\u0027ll come back to it later."},{"Start":"00:24.645 ","End":"00:28.830","Text":"But for now, let\u0027s first try to find the potential energy of the force."},{"Start":"00:28.830 ","End":"00:34.185","Text":"What I\u0027m looking for is some force that\u0027s going to fill these requirements below that"},{"Start":"00:34.185 ","End":"00:39.285","Text":"F_x equals negative dU dx F_y equals negative dU dy."},{"Start":"00:39.285 ","End":"00:42.530","Text":"In this case, there\u0027s no F_ z because we\u0027re dealing with a simpler problem."},{"Start":"00:42.530 ","End":"00:43.670","Text":"But if there were,"},{"Start":"00:43.670 ","End":"00:45.815","Text":"F_z would have to follow that as well."},{"Start":"00:45.815 ","End":"00:49.910","Text":"This is really almost impossible to do unless you\u0027re fulfilling"},{"Start":"00:49.910 ","End":"00:54.410","Text":"this first requirement that the gradient of the force equals 0."},{"Start":"00:54.410 ","End":"00:56.690","Text":"In that case, you will be able to find something,"},{"Start":"00:56.690 ","End":"00:59.340","Text":"otherwise it\u0027s near impossible."},{"Start":"01:00.290 ","End":"01:04.010","Text":"Enough talking. Let\u0027s get down to brass tacks."},{"Start":"01:04.010 ","End":"01:11.185","Text":"We can finally do this example by filling in our x with F_x and solving for U."},{"Start":"01:11.185 ","End":"01:15.535","Text":"It\u0027ll give us some understanding of what U equals and we can work from there."},{"Start":"01:15.535 ","End":"01:19.085","Text":"If we write down from our function, the x portion,"},{"Start":"01:19.085 ","End":"01:23.450","Text":"that which goes in the direction of x equals negative 2xy."},{"Start":"01:23.450 ","End":"01:29.660","Text":"According to this, negative 2xy equals negative dU dx."},{"Start":"01:29.660 ","End":"01:31.040","Text":"We can simplify this,"},{"Start":"01:31.040 ","End":"01:33.110","Text":"first the negatives will drop out."},{"Start":"01:33.110 ","End":"01:35.795","Text":"If we simplify that U is isolated,"},{"Start":"01:35.795 ","End":"01:43.450","Text":"we get U equals the integral of 2xy times dx."},{"Start":"01:43.450 ","End":"01:48.205","Text":"When we do this, we find that U equals x^2y."},{"Start":"01:48.205 ","End":"01:51.470","Text":"Now, because we\u0027re doing an indefinite integral,"},{"Start":"01:51.470 ","End":"01:55.400","Text":"we have to add some constant C. C can"},{"Start":"01:55.400 ","End":"01:59.540","Text":"also be dependent on the variable y because we did a partial derivative,"},{"Start":"01:59.540 ","End":"02:04.385","Text":"the C in the y will both drop out if we do a partial derivative of x."},{"Start":"02:04.385 ","End":"02:07.940","Text":"In our example, if we did a partial derivative of x,"},{"Start":"02:07.940 ","End":"02:12.830","Text":"we\u0027d find that we end up with negative 2xy or really 2xy."},{"Start":"02:12.830 ","End":"02:17.270","Text":"Because Cy doesn\u0027t have any x\u0027s in it, it would fall out."},{"Start":"02:17.270 ","End":"02:19.835","Text":"We won\u0027t solve for y right now."},{"Start":"02:19.835 ","End":"02:22.595","Text":"But what\u0027s important is that this requirement is met,"},{"Start":"02:22.595 ","End":"02:25.595","Text":"F_x equals negative dU dx."},{"Start":"02:25.595 ","End":"02:26.825","Text":"Now that we have that,"},{"Start":"02:26.825 ","End":"02:30.455","Text":"we should move on to F_y equals negative dU dy."},{"Start":"02:30.455 ","End":"02:33.020","Text":"We\u0027re not going to perform the same operation."},{"Start":"02:33.020 ","End":"02:34.760","Text":"We\u0027re not going to take F_y,"},{"Start":"02:34.760 ","End":"02:38.135","Text":"set it equal to negative dU dy and do an integral,"},{"Start":"02:38.135 ","End":"02:41.915","Text":"in fact, we\u0027re going to take the results that we found and go backwards."},{"Start":"02:41.915 ","End":"02:45.440","Text":"We have here is x^2y plus some C,"},{"Start":"02:45.440 ","End":"02:50.185","Text":"perhaps multiplied by y equals U."},{"Start":"02:50.185 ","End":"02:53.105","Text":"If we have that, we can take dU, dy from that,"},{"Start":"02:53.105 ","End":"02:54.755","Text":"a partial derivative of y,"},{"Start":"02:54.755 ","End":"02:57.485","Text":"and that will equal F_y. Let\u0027s write this out."},{"Start":"02:57.485 ","End":"03:01.375","Text":"Negative dU dy equals F_y."},{"Start":"03:01.375 ","End":"03:06.555","Text":"That means that negative dU dy is the partial derivative accounting for y."},{"Start":"03:06.555 ","End":"03:12.330","Text":"We end up with the result of x^2 for the x^2y plus some C tag y,"},{"Start":"03:12.330 ","End":"03:13.890","Text":"which we\u0027ll determine soon."},{"Start":"03:13.890 ","End":"03:16.605","Text":"That must equal F_y."},{"Start":"03:16.605 ","End":"03:23.850","Text":"F_y, we know from our function is 2 minus x^2 in the direction of y."},{"Start":"03:23.850 ","End":"03:26.045","Text":"From here we can simplify a little bit."},{"Start":"03:26.045 ","End":"03:29.555","Text":"You notice that we have negative x^2 on both sides, that\u0027ll drop out."},{"Start":"03:29.555 ","End":"03:33.635","Text":"In fact, this happens relatively frequently as you\u0027ll see in later examples."},{"Start":"03:33.635 ","End":"03:37.190","Text":"What we\u0027re left with is C tag y equals"},{"Start":"03:37.190 ","End":"03:40.880","Text":"negative 2 if we multiply everything by negative 1."},{"Start":"03:40.880 ","End":"03:46.975","Text":"Now, the C tag y is actually the derivative of some function with y."},{"Start":"03:46.975 ","End":"03:52.970","Text":"What we can say is this equals the integral of negative 2dy."},{"Start":"03:52.970 ","End":"03:54.985","Text":"When we perform this,"},{"Start":"03:54.985 ","End":"03:59.120","Text":"we end up with is negative 2y plus C tag."},{"Start":"03:59.120 ","End":"04:00.545","Text":"This is a new C tag."},{"Start":"04:00.545 ","End":"04:02.045","Text":"This is not the old C tag,"},{"Start":"04:02.045 ","End":"04:05.120","Text":"but this can\u0027t be dependent on x because that would"},{"Start":"04:05.120 ","End":"04:08.645","Text":"mean that the former function on our left is also dependent on x."},{"Start":"04:08.645 ","End":"04:12.350","Text":"This could be dependent on z if we had a z element."},{"Start":"04:12.350 ","End":"04:14.510","Text":"But in this particular example, we don\u0027t."},{"Start":"04:14.510 ","End":"04:16.980","Text":"I\u0027m sure you\u0027ll see that in the future though."},{"Start":"04:17.140 ","End":"04:20.285","Text":"Now that you\u0027ve found a new Cy,"},{"Start":"04:20.285 ","End":"04:23.785","Text":"you can put it into our new understanding of U above."},{"Start":"04:23.785 ","End":"04:27.550","Text":"We have the skeleton of U and it\u0027s evolving as we go through the process."},{"Start":"04:27.550 ","End":"04:30.770","Text":"We can now do is plug in the new Cy and we\u0027re moving a step"},{"Start":"04:30.770 ","End":"04:34.835","Text":"closer to having a true understanding of u, the potential energy."},{"Start":"04:34.835 ","End":"04:41.805","Text":"We can write this out, U equals x^2y plus negative 2y."},{"Start":"04:41.805 ","End":"04:48.540","Text":"We can just write that as negative or minus 2y plus C tag."},{"Start":"04:48.710 ","End":"04:52.850","Text":"This U actually fulfills all of our requirements."},{"Start":"04:52.850 ","End":"04:57.080","Text":"First of all, F_x equals negative dU dx."},{"Start":"04:57.080 ","End":"05:00.740","Text":"Second of all, F_y equals negative dU, dy."},{"Start":"05:00.740 ","End":"05:05.170","Text":"It fulfills those. All we have left to do is fill in the constant."},{"Start":"05:05.170 ","End":"05:08.210","Text":"This should be familiar with other instances of potential energy."},{"Start":"05:08.210 ","End":"05:10.595","Text":"For example, when we\u0027re dealing with mgh,"},{"Start":"05:10.595 ","End":"05:12.575","Text":"we need to choose h, a constant,"},{"Start":"05:12.575 ","End":"05:14.420","Text":"at whatever point is going to be 0."},{"Start":"05:14.420 ","End":"05:16.445","Text":"We need to find what h(0) is."},{"Start":"05:16.445 ","End":"05:18.760","Text":"Here we need to do something similar."},{"Start":"05:18.760 ","End":"05:21.180","Text":"Now we need to account for this constant."},{"Start":"05:21.180 ","End":"05:24.695","Text":"This is where we put in the piece of given data we have from before."},{"Start":"05:24.695 ","End":"05:27.580","Text":"At 0, 0 U=0."},{"Start":"05:27.580 ","End":"05:30.365","Text":"That means that when x=0 and y=0,"},{"Start":"05:30.365 ","End":"05:32.230","Text":"our potential energy equals 0."},{"Start":"05:32.230 ","End":"05:34.065","Text":"We can plug this in and solve."},{"Start":"05:34.065 ","End":"05:36.500","Text":"U 0,0, that means x=0,"},{"Start":"05:36.500 ","End":"05:40.330","Text":"y=0 would be 0 minus 0 plus C tag."},{"Start":"05:40.330 ","End":"05:42.570","Text":"We\u0027re told that this equals 0."},{"Start":"05:42.570 ","End":"05:46.660","Text":"Here we now know that C tag equals 0."},{"Start":"05:46.760 ","End":"05:54.355","Text":"If C=0, we can drop it from the equation and we\u0027re left with U=x^2y minus 2y."},{"Start":"05:54.355 ","End":"05:56.140","Text":"That\u0027s the solution to the problem."},{"Start":"05:56.140 ","End":"05:58.765","Text":"Let\u0027s do a quick summary of the technique here."},{"Start":"05:58.765 ","End":"06:00.235","Text":"I took 1 of my elements."},{"Start":"06:00.235 ","End":"06:02.020","Text":"It could have been y or it could have been x,"},{"Start":"06:02.020 ","End":"06:05.240","Text":"but I took F_x and I did an integral of it."},{"Start":"06:05.240 ","End":"06:11.875","Text":"What I ended up with was a solution to which I added a constant C that\u0027s dependent on y."},{"Start":"06:11.875 ","End":"06:16.615","Text":"Now I take this solution and do a partial derivative based on y of it."},{"Start":"06:16.615 ","End":"06:18.205","Text":"The solution I get from that,"},{"Start":"06:18.205 ","End":"06:20.080","Text":"I set equal to F_y."},{"Start":"06:20.080 ","End":"06:25.435","Text":"This will give me a new value for C tag y. I can replace that."},{"Start":"06:25.435 ","End":"06:27.790","Text":"This solved for us with 2 variables,"},{"Start":"06:27.790 ","End":"06:31.540","Text":"but let\u0027s assume we add a third variable z that we also had to account for."},{"Start":"06:31.540 ","End":"06:38.700","Text":"Well, this initial Cy in yellow would have been dependent not only on y but also on z."},{"Start":"06:38.700 ","End":"06:40.475","Text":"It could have been C depending on y,"},{"Start":"06:40.475 ","End":"06:42.140","Text":"it could have been C dependent on z."},{"Start":"06:42.140 ","End":"06:43.850","Text":"The next step would have been the same."},{"Start":"06:43.850 ","End":"06:46.190","Text":"We do a partial derivative of y,"},{"Start":"06:46.190 ","End":"06:48.605","Text":"so we can eliminate the y factor."},{"Start":"06:48.605 ","End":"06:52.595","Text":"Then what we\u0027d end up with is some solution in terms of,"},{"Start":"06:52.595 ","End":"06:55.850","Text":"let\u0027s say, it\u0027s still negative 2y plus Cz."},{"Start":"06:55.850 ","End":"06:59.960","Text":"This is only dependent on z because we\u0027ve already eliminated the x factor,"},{"Start":"06:59.960 ","End":"07:01.970","Text":"we\u0027ve already eliminated the y factor."},{"Start":"07:01.970 ","End":"07:05.150","Text":"This last C can only be dependent on z."},{"Start":"07:05.150 ","End":"07:07.714","Text":"Then we would do the second step, again,"},{"Start":"07:07.714 ","End":"07:10.940","Text":"doing a partial derivative of z now and"},{"Start":"07:10.940 ","End":"07:14.390","Text":"setting that equal to F_z as opposed to F_y or F_x."},{"Start":"07:14.390 ","End":"07:20.435","Text":"The solution there would give us some long solution plus a Cz element, as you see here."},{"Start":"07:20.435 ","End":"07:23.315","Text":"On the end, we\u0027d have a C that\u0027s some constant."},{"Start":"07:23.315 ","End":"07:27.080","Text":"We could solve for the constant the same way by using our given data point."},{"Start":"07:27.080 ","End":"07:31.445","Text":"What we\u0027d have is the same thing with a z element on the end."},{"Start":"07:31.445 ","End":"07:35.060","Text":"Ultimately, if you understand how this worked with x and y,"},{"Start":"07:35.060 ","End":"07:39.510","Text":"you\u0027ll understand very easily how it works with z in future examples."}],"ID":9310}],"Thumbnail":null,"ID":5425}]

Continue watching

Name: Part 1- The Work of the Net Force Equals the Sum of the Work of Each Force Individually: Video + Workbook | Proprep
Uploaded: 2017-03-22T09:58:03.8630000
Duration: 3 min 53 s
Description: Work and Energy - Deriving Work and Energy Equations. Watch the video made by an expert in the field. Download the workbook and maximize your learning.

Get unlimited access to 1500 subjects including personalised modules

Up Next

Comments

Description

Sign up

Continue watching

Announcement

Upload your syllabus

See how it works

Now check your email for your code

What subjects are you looking for?