{"id":677,"date":"2018-02-06T16:22:06","date_gmt":"2018-02-06T16:22:06","guid":{"rendered":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/?post_type=chapter&#038;p=677"},"modified":"2018-02-28T15:57:02","modified_gmt":"2018-02-28T15:57:02","slug":"7-3-work-energy-theorem","status":"publish","type":"chapter","link":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/7-3-work-energy-theorem\/","title":{"raw":"7.3 Work-Energy Theorem","rendered":"7.3 Work-Energy Theorem"},"content":{"raw":"<div class=\"textbox learning-objectives\">\r\n<h3>Learning Objectives<\/h3>\r\nBy the end of this section, you will be able to:\r\n<ul>\r\n \t<li>Apply the work-energy theorem to find information about the motion of a particle, given the forces acting on it<\/li>\r\n \t<li>Use the work-energy theorem to find information about the forces acting on a particle, given information about its motion<\/li>\r\n<\/ul>\r\n<\/div>\r\n<p id=\"fs-id1165036745203\">We have discussed how to find the work done on a particle by the forces that act on it, but how is that work manifested in the motion of the particle? According to Newton\u2019s second law of motion, the sum of all the forces acting on a particle, or the net force, determines the rate of change in the momentum of the particle, or its motion. Therefore, we should consider the work done by all the forces acting on a particle, or the <strong>net work<\/strong>, to see what effect it has on the particle\u2019s motion.<\/p>\r\n<p id=\"fs-id1165036881803\">Let\u2019s start by looking at the net work done on a particle as it moves over an infinitesimal displacement, which is the dot product of the net force and the displacement: $$ d{W}_{\\text{net}}={\\overset{\\to }{F}}_{\\text{net}}\u00b7d\\overset{\\to }{r}. $$ Newton\u2019s second law tells us that $$ {\\overset{\\to }{F}}_{\\text{net}}=m(d\\overset{\\to }{v}\\text{\/}dt),$$, so $$ d{W}_{\\text{net}}=m(d\\overset{\\to }{v}\\text{\/}dt)\u00b7d\\overset{\\to }{r}. $$ For the mathematical functions describing the motion of a physical particle, we can rearrange the differentials <em>dt<\/em>, etc., as algebraic quantities in this expression, that is,<\/p>\r\n\r\n<div id=\"fs-id1165037178454\" class=\"unnumbered\">$$d{W}_{\\text{net}}=m(\\frac{d\\overset{\\to }{v}}{dt})\u00b7d\\overset{\\to }{r}=md\\overset{\\to }{v}\u00b7(\\frac{d\\overset{\\to }{r}}{dt})=m\\overset{\\to }{v}\u00b7d\\overset{\\to }{v},$$<\/div>\r\n<p id=\"fs-id1165038158678\">where we substituted the velocity for the time derivative of the displacement and used the commutative property of the dot product [<a href=\"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/2-4-products-of-vectors\/#fs-id1167134952226\">(Equation 2.30)<\/a>]. Since derivatives and integrals of scalars are probably more familiar to you at this point, we express the dot product in terms of Cartesian coordinates before we integrate between any two points <em>A<\/em> and <em>B<\/em> on the particle\u2019s trajectory. This gives us the net work done on the particle:<\/p>\r\n\r\n<div id=\"fs-id1165037271104\">$$\\begin{array}{cc}\\hfill {W}_{\\text{net},AB}&amp; ={\\int }_{A}^{B}(m{v}_{x}d{v}_{x}+m{v}_{y}d{v}_{y}+m{v}_{z}d{v}_{z})\\hfill \\\\ &amp; =\\frac{1}{2}m{|{v}_{x}^{2}+{v}_{y}^{2}+{v}_{z}^{2}|}_{A}^{B}={|\\frac{1}{2}m{v}^{2}|}_{A}^{B}={K}_{B}-{K}_{A}.\\hfill \\end{array}$$<\/div>\r\n<p id=\"fs-id1165038335952\">In the middle step, we used the fact that the square of the velocity is the sum of the squares of its Cartesian components, and in the last step, we used the definition of the particle\u2019s kinetic energy. This important result is called the <strong>work-energy theorem<\/strong> (<a class=\"autogenerated-content\" href=\"#CNX_UPhysics_07_03_HorsePull\">(Figure)<\/a>).<\/p>\r\n\r\n<div id=\"fs-id1165036884203\">\r\n<h4>Work-Energy Theorem<\/h4>\r\n<p id=\"fs-id1165036972359\">The net work done on a particle equals the change in the particle\u2019s kinetic energy:<\/p>\r\n\r\n<div>$${W}_{\\text{net}}={K}_{B}-{K}_{A}.$$<\/div>\r\n<\/div>\r\n<div id=\"CNX_UPhysics_07_03_HorsePull\" class=\"wp-caption aligncenter\">\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"619\"]<img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191429\/CNX_UPhysics_07_03_HorsePull.jpg\" alt=\"A photograph of horses pulling a loaded cart at a fair.\" width=\"619\" height=\"417\" \/> <strong>Figure 7.11<\/strong> Horse pulls are common events at state fairs. The work done by the horses pulling on the load results in a change in kinetic energy of the load, ultimately going faster. (credit: \u201cJassen\u201d\/ Flickr)[\/caption]\r\n\r\n<\/div>\r\n<p id=\"fs-id1165038275860\">According to this theorem, when an object slows down, its final kinetic energy is less than its initial kinetic energy, the change in its kinetic energy is negative, and so is the net work done on it. If an object speeds up, the net work done on it is positive. When calculating the net work, you must include all the forces that act on an object. If you leave out any forces that act on an object, or if you include any forces that don\u2019t act on it, you will get a wrong result.<\/p>\r\n<p id=\"fs-id1165037941283\">The importance of the work-energy theorem, and the further generalizations to which it leads, is that it makes some types of calculations much simpler to accomplish than they would be by trying to solve Newton\u2019s second law. For example, in <a href=\"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/introduction-5\/\">Newton\u2019s Laws of Motion<\/a>, we found the speed of an object sliding down a frictionless plane by solving Newton\u2019s second law for the acceleration and using kinematic equations for constant acceleration, obtaining<\/p>\r\n\r\n<div id=\"fs-id1165037936500\" class=\"unnumbered\">$${v}_{\\text{f}}^{2}={v}_{\\text{i}}^{2}+2g({s}_{\\text{f}}-{s}_{\\text{i}})\\text{sin}\\,\\theta ,$$<\/div>\r\n<p id=\"fs-id1165038293742\">where <em>s<\/em> is the displacement down the plane.<\/p>\r\nWe can also get this result from the work-energy theorem. Since only two forces are acting on the object\u2014gravity and the normal force\u2014and the normal force doesn\u2019t do any work, the net work is just the work done by gravity. This only depends on the object\u2019s weight and the difference in height, so\r\n<div id=\"fs-id1165036746551\" class=\"unnumbered\">$${W}_{\\text{net}}={W}_{\\text{grav}}=\\text{\u2212}mg({y}_{\\text{f}}-{y}_{\\text{i}}),$$<\/div>\r\n<p id=\"fs-id1165038045401\">where <em>y<\/em> is positive up. The work-energy theorem says that this equals the change in kinetic energy:<\/p>\r\n\r\n<div id=\"fs-id1165037026304\" class=\"unnumbered\">$$\\text{\u2212}mg({y}_{\\text{f}}-{y}_{\\text{i}})=\\frac{1}{2}m({v}_{\\text{f}}^{2}-{v}_{\\text{i}}^{2}).$$<\/div>\r\n<p id=\"fs-id1165038021515\">Using a right triangle, we can see that $$ ({y}_{\\text{f}}-{y}_{\\text{i}})=({s}_{\\text{f}}-{s}_{\\text{i}})\\text{sin}\\,\\theta , $$ so the result for the final speed is the same.<\/p>\r\n<p id=\"fs-id1165036784442\">What is gained by using the work-energy theorem? The answer is that for a frictionless plane surface, not much. However, Newton\u2019s second law is easy to solve only for this particular case, whereas the work-energy theorem gives the final speed for any shaped frictionless surface. For an arbitrary curved surface, the normal force is not constant, and Newton\u2019s second law may be difficult or impossible to solve analytically. Constant or not, for motion along a surface, the normal force never does any work, because it\u2019s perpendicular to the displacement. A calculation using the work-energy theorem avoids this difficulty and applies to more general situations.<\/p>\r\n\r\n<div id=\"fs-id1165038197586\" class=\"problem-solving\">\r\n<h4>Problem-Solving Strategy: Work-Energy Theorem<\/h4>\r\n<ol id=\"fs-id1165038218352\" type=\"1\">\r\n \t<li>Draw a free-body diagram for each force on the object.<\/li>\r\n \t<li>Determine whether or not each force does work over the displacement in the diagram. Be sure to keep any positive or negative signs in the work done.<\/li>\r\n \t<li>Add up the total amount of work done by each force.<\/li>\r\n \t<li>Set this total work equal to the change in kinetic energy and solve for any unknown parameter.<\/li>\r\n \t<li>Check your answers. If the object is traveling at a constant speed or zero acceleration, the total work done should be zero and match the change in kinetic energy. If the total work is positive, the object must have sped up or increased kinetic energy. If the total work is negative, the object must have slowed down or decreased kinetic energy.<\/li>\r\n<\/ol>\r\n<\/div>\r\n<div id=\"fs-id1165038363881\" class=\"textbox examples\">\r\n<h3>Example<\/h3>\r\n<h4>Loop-the-Loop<\/h4>\r\nThe frictionless track for a toy car includes a <strong><span class=\"no-emphasis\">loop-the-loop<\/span><\/strong> of radius <em>R<\/em>. How high, measured from the bottom of the loop, must the car be placed to start from rest on the approaching section of track and go all the way around the loop?\r\n<div id=\"CNX_UPhysics_07_03_Loop\" class=\"wp-caption aligncenter\">\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"480\"]<img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191434\/CNX_UPhysics_07_03_Loop.jpg\" alt=\"A track descends to the ground, forms a circular loop of radius R, then continues horizontally at ground level. Point 1 is before the loop, near the start of the track at elevation y sub 1 above the ground. Point 2 is at the top of the loop, at elevation y sub 2 = 2 R. At point 2, there are 2 forces, N and m g. Both forces point vertically down.\" width=\"480\" height=\"244\" \/> <strong>Figure 7.12<\/strong> A frictionless track for a toy car has a loop-the-loop in it. How high must the car start so that it can go around the loop without falling off?[\/caption]\r\n\r\n<\/div>\r\n&nbsp;\r\n<h4>Strategy<\/h4>\r\nThe free-body diagram at the final position of the object is drawn in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_07_03_Loop\">(Figure)<\/a>. The gravitational work is the only work done over the displacement that is not zero. Since the weight points in the same direction as the net vertical displacement, the total work done by the gravitational force is positive. From the work-energy theorem, the starting height determines the speed of the car at the top of the loop,\r\n<div id=\"fs-id1165038022495\" class=\"unnumbered\">$$mg({y}_{2}-{y}_{1})=\\frac{1}{2}m{v}_{2}{}^{2},$$<\/div>\r\n<p id=\"fs-id1165038239026\">where the notation is shown in the accompanying figure. At the top of the loop, the normal force and gravity are both down and the acceleration is centripetal, so<\/p>\r\n\r\n<div class=\"unnumbered\">$${a}_{\\text{top}}=\\frac{F}{m}=\\frac{N+mg}{m}=\\frac{{v}_{2}^{2}}{R}.$$<\/div>\r\n<p id=\"fs-id1165038034300\">The condition for maintaining contact with the track is that there must be some normal force, however slight; that is, $$ N&gt;0$$. Substituting for $$ {v}_{2}^{2} $$ and <em>N<\/em>, we can find the condition for $$ {y}_{1}$$.<\/p>\r\n\r\n<h4>Solution<\/h4>\r\n<p id=\"fs-id1165038277995\">Implement the steps in the strategy to arrive at the desired result:<\/p>\r\n\r\n<div id=\"fs-id1165037899383\" class=\"unnumbered\">$$N=\\frac{\\text{\u2212}mg+m{v}_{2}^{2}}{R}=\\frac{\\text{\u2212}mg+2mg({y}_{1}-2R)}{R}&gt;0\\text{\u2003}\\text{or}\\text{\u2003}{y}_{1}&gt;\\frac{5R}{2}.$$<\/div>\r\n<h4>Significance<\/h4>\r\nOn the surface of the loop, the normal component of gravity and the normal contact force must provide the centripetal acceleration of the car going around the loop. The tangential component of gravity slows down or speeds up the car. A child would find out how high to start the car by trial and error, but now that you know the work-energy theorem, you can predict the minimum height (as well as other more useful results) from physical principles. By using the work-energy theorem, you did not have to solve a differential equation to determine the height.\r\n\r\n<\/div>\r\n<div id=\"fs-id1165036872618\" class=\"media-2\">\r\n<div class=\"textbox exercises\">\r\n<h3>Check your understanding<\/h3>\r\n<div id=\"fs-id1165037912099\">\r\n\r\nSuppose the radius of the loop-the-loop in <a class=\"autogenerated-content\" href=\"#fs-id1165038363881\">(Figure)<\/a> is 15 cm and the toy car starts from rest at a height of 45 cm above the bottom. What is its speed at the top of the loop?\r\n\r\n<\/div>\r\n<div id=\"fs-id1165038202150\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1165038202150\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1165038202150\"]\r\n<p id=\"fs-id1165038237523\">$$\\sqrt{3}\\,\\text{m\/s}$$<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n&nbsp;\r\n<p id=\"fs-id1165038204963\">Visit Carleton College\u2019s site to see a <a href=\"https:\/\/openstaxcollege.org\/l\/21carcollvidrol\">video<\/a> of a looping rollercoaster.<\/p>\r\n\r\n<\/div>\r\n<p id=\"fs-id1165037151971\">In situations where the motion of an object is known, but the values of one or more of the forces acting on it are not known, you may be able to use the work-energy theorem to get some information about the forces. Work depends on the force and the distance over which it acts, so the information is provided via their product.<\/p>\r\n\r\n<div id=\"fs-id1165036746143\" class=\"textbox examples\">\r\n<h3>Example<\/h3>\r\n<h4>Determining a Stopping Force<\/h4>\r\nA bullet from a 0.22LR-caliber cartridge has a mass of 40 grains (2.60 g) and a muzzle velocity of 1100 ft.\/s (335 m\/s). It can penetrate eight 1-inch pine boards, each with thickness 0.75 inches. What is the average stopping force exerted by the wood, as shown in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_07_03_Ex2\">(Figure)<\/a>?\r\n<div id=\"CNX_UPhysics_07_03_Ex2\" class=\"wp-caption aligncenter\">\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"745\"]<img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191437\/CNX_UPhysics_07_03_Ex2.jpg\" alt=\"In figure a, a bullet is moving horizontally at a speed of 335 meters per second toward a set of 8 boards, arranged in a horizontal stack. In figure b, the bullet has passed through the stack of boards and has stopped at the far end of the last board. The stopping distance is indicated as the width of the stack of boards.\" width=\"745\" height=\"190\" \/> <strong>Figure 7.13<\/strong> The boards exert a force to stop the bullet. As a result, the boards do work and the bullet loses kinetic energy.[\/caption]\r\n\r\n<div class=\"wp-caption-text\"><\/div>\r\n<\/div>\r\n<h4>Strategy<\/h4>\r\nWe can assume that under the general conditions stated, the bullet loses all its kinetic energy penetrating the boards, so the work-energy theorem says its initial kinetic energy is equal to the average stopping force times the distance penetrated. The change in the bullet\u2019s kinetic energy and the net work done stopping it are both negative, so when you write out the work-energy theorem, with the net work equal to the average force times the stopping distance, that\u2019s what you get. The total thickness of eight 1-inch pine boards that the bullet penetrates is $$ 8\\,\u00d7\\,\\frac{3}{4}\\,\\text{in}\\text{.}=6\\,\\text{in}\\text{.}=15.2\\,\\text{cm}\\text{.}$$\r\n<h4>Solution<\/h4>\r\n<p id=\"fs-id1165037217195\">Applying the work-energy theorem, we get<\/p>\r\n\r\n<div id=\"fs-id1165038191332\" class=\"unnumbered\">$${W}_{\\text{net}}=\\text{\u2212}{F}_{\\text{ave}}\\text{\u0394}{s}_{\\text{stop}}=\\text{\u2212}{K}_{\\text{initial}},$$<\/div>\r\n<p id=\"fs-id1165036762223\">so<\/p>\r\n\r\n<div id=\"fs-id1165036779648\" class=\"unnumbered\">$${F}_{\\text{ave}}=\\frac{\\frac{1}{2}m{v}^{2}}{\\text{\u0394}{s}_{\\text{stop}}}=\\frac{\\frac{1}{2}(2.6\\,\u00d7\\,{10}^{-3}\\text{kg}){(335\\,\\text{m\/s})}^{2}}{0.152\\,\\text{m}}=960\\,\\text{N}\\text{.}$$<\/div>\r\n<h4>Significance<\/h4>\r\nWe could have used Newton\u2019s second law and kinematics in this example, but the work-energy theorem also supplies an answer to less simple situations. The penetration of a bullet, fired vertically upward into a block of wood, is discussed in one section of Asif Shakur\u2019s recent article [\u201cBullet-Block Science Video Puzzle.\u201d <em>The Physics Teacher<\/em> (January 2015) 53(1): 15-16]. If the bullet is fired dead center into the block, it loses all its kinetic energy and penetrates slightly farther than if fired off-center. The reason is that if the bullet hits off-center, it has a little kinetic energy after it stops penetrating, because the block rotates. The work-energy theorem implies that a smaller change in kinetic energy results in a smaller penetration. You will understand more of the physics in this interesting article after you finish reading <a href=\"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/introduction-11\/\">Angular Momentum<\/a>.\r\n\r\n<\/div>\r\n<div id=\"fs-id1165036894997\" class=\"media-2\">\r\n<p id=\"fs-id1165037057026\">Learn more about work and energy in this <a href=\"https:\/\/openstaxcollege.org\/l\/21PhETSimRamp\">PhET simulation<\/a> called \u201cthe ramp.\u201d Try changing the force pushing the box and the frictional force along the incline. The work and energy plots can be examined to note the total work done and change in kinetic energy of the box.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1165038375037\" class=\"textbox key-takeaways\">\r\n<h3>Summary<\/h3>\r\n<ul id=\"fs-id1165037979710\">\r\n \t<li>Because the net force on a particle is equal to its mass times the derivative of its velocity, the integral for the net work done on the particle is equal to the change in the particle\u2019s kinetic energy. This is the work-energy theorem.<\/li>\r\n \t<li>You can use the work-energy theorem to find certain properties of a system, without having to solve the differential equation for Newton\u2019s second law.<\/li>\r\n<\/ul>\r\n<\/div>\r\n<div id=\"fs-id1165036751109\" class=\"review-conceptual-questions\">\r\n<h3>Conceptual Questions<\/h3>\r\n<div id=\"fs-id1165036784000\" class=\"problem textbox\">\r\n<div id=\"fs-id1165038219695\">\r\n<p id=\"fs-id1165036834178\">The person shown below does work on the lawn mower. Under what conditions would the mower gain energy from the person pushing the mower? Under what conditions would it lose energy?<\/p>\r\n<span id=\"fs-id1165036966253\"><img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191440\/CNX_UPhysics_07_03_Mower_img.jpg\" alt=\"A person pushing a lawn mower with a force F. Force is represented by a vector parallel to the mower handle, making an angle theta below the horizontal. The distance moved by the mower is represented by horizontal vector d. The horizontal component of vector F along vector d is F cosine theta. Work done by the person, W, is equal to F d cosine theta.\" \/><\/span>\r\n\r\n[reveal-answer q=\"617101\"]Show Solution[\/reveal-answer]\r\n[hidden-answer a=\"617101\"]The mower would gain energy if $$ -90\\text{\u00b0}&lt;\\theta &lt;90\\text{\u00b0}. $$ It would lose energy if $$ 90\\text{\u00b0}&lt;\\theta &lt;270\\text{\u00b0}. $$ The mower may also lose energy due to friction with the grass while pushing; however, we are not concerned with that energy loss for this problem.[\/hidden-answer]\r\n\r\n<\/div>\r\n<div id=\"fs-id1165036893822\"><\/div>\r\n<\/div>\r\n<div id=\"fs-id1165038018101\" class=\"problem textbox\">\r\n<div id=\"fs-id1165037972763\">\r\n<p id=\"fs-id1165036895435\">Work done on a system puts energy into it. Work done by a system removes energy from it. Give an example for each statement.<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165038013807\" class=\"problem textbox\">\r\n<div id=\"fs-id1165038377232\">\r\n<p id=\"fs-id1165037214818\">Two marbles of masses <em>m<\/em> and 2<em>m<\/em> are dropped from a height <em>h<\/em>. Compare their kinetic energies when they reach the ground.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1165037865497\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1165037865497\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1165037865497\"]\r\n<p id=\"fs-id1165036771142\">The second marble has twice the kinetic energy of the first because kinetic energy is directly proportional to mass, like the work done by gravity.<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165038375169\" class=\"problem textbox\">\r\n<div id=\"fs-id1165038308538\">\r\n<p id=\"fs-id1165038024755\">Compare the work required to accelerate a car of mass 2000 kg from 30.0 to 40.0 km\/h with that required for an acceleration from 50.0 to 60.0 km\/h.<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165038238873\" class=\"problem textbox\">\r\n<div id=\"fs-id1165038307806\">\r\n<p id=\"fs-id1165037848453\">Suppose you are jogging at constant velocity. Are you doing any work on the environment and vice versa?<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1165036728890\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1165036728890\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1165036728890\"]\r\n<p id=\"fs-id1165036967810\">Unless the environment is nearly frictionless, you are doing some positive work on the environment to cancel out the frictional work against you, resulting in zero total work producing a constant velocity.<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165037841106\" class=\"problem textbox\">\r\n<div id=\"fs-id1165037940254\">\r\n<p id=\"fs-id1165036895057\">Two forces act to double the speed of a particle, initially moving with kinetic energy of 1 J. One of the forces does 4 J of work. How much work does the other force do?<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165037968970\" class=\"review-problems textbox exercises\">\r\n<h3>Problems<\/h3>\r\n<div id=\"fs-id1165038273128\" class=\"problem textbox\">\r\n<div id=\"fs-id1165036795802\">\r\n<p id=\"fs-id1165037935391\">(a) Calculate the force needed to bring a 950-kg car to rest from a speed of 90.0 km\/h in a distance of 120 m (a fairly typical distance for a non-panic stop). (b) Suppose instead the car hits a concrete abutment at full speed and is brought to a stop in 2.00 m. Calculate the force exerted on the car and compare it with the force found in part (a).<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165037909594\" class=\"problem textbox\">\r\n<div id=\"fs-id1165037213582\">\r\n<p id=\"fs-id1165038365020\">A car\u2019s bumper is designed to withstand a 4.0-km\/h (1.1-m\/s) collision with an immovable object without damage to the body of the car. The bumper cushions the shock by absorbing the force over a distance. Calculate the magnitude of the average force on a bumper that collapses 0.200 m while bringing a 900-kg car to rest from an initial speed of 1.1 m\/s.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1165038034161\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1165038034161\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1165038034161\"]\r\n<p id=\"fs-id1165037179095\">2.72 kN<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165036759677\" class=\"problem textbox\">\r\n<div id=\"fs-id1165036758380\">\r\n<p id=\"fs-id1165037167559\">Boxing gloves are padded to lessen the force of a blow. (a) Calculate the force exerted by a boxing glove on an opponent\u2019s face, if the glove and face compress 7.50 cm during a blow in which the 7.00-kg arm and glove are brought to rest from an initial speed of 10.0 m\/s. (b) Calculate the force exerted by an identical blow in the gory old days when no gloves were used, and the knuckles and face would compress only 2.00 cm. Assume the change in mass by removing the glove is negligible. (c) Discuss the magnitude of the force with glove on. Does it seem high enough to cause damage even though it is lower than the force with no glove?<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165037867393\" class=\"problem textbox\">\r\n<div id=\"fs-id1165037983879\">\r\n<p id=\"fs-id1165038046664\">Using energy considerations, calculate the average force a 60.0-kg sprinter exerts backward on the track to accelerate from 2.00 to 8.00 m\/s in a distance of 25.0 m, if he encounters a headwind that exerts an average force of 30.0 N against him.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1165038006594\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1165038006594\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1165038006594\"]\r\n<p id=\"fs-id1165037221080\">102 N<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165038132596\" class=\"problem textbox\">\r\n<div id=\"fs-id1165037056894\">\r\n<p id=\"fs-id1165038058069\">A 5.0-kg box has an acceleration of $$ 2.0{\\,\\text{m\/s}}^{2} $$ when it is pulled by a horizontal force across a surface with $$ {\\mu }_{K}=0.50. $$ Find the work done over a distance of 10 cm by (a) the horizontal force, (b) the frictional force, and (c) the net force. (d) What is the change in kinetic energy of the box?<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165038183594\">\r\n<div class=\"textbox\">\r\n<div>\r\n<p id=\"fs-id1165037948977\">A constant 10-N horizontal force is applied to a 20-kg cart at rest on a level floor. If friction is negligible, what is the speed of the cart when it has been pushed 8.0 m?<\/p>\r\n[reveal-answer q=\"607788\"]Show Solution[\/reveal-answer]\r\n[hidden-answer a=\"607788\"]2.8 m\/s[\/hidden-answer]\r\n\r\n<\/div>\r\n<div id=\"fs-id1165037935511\"><\/div>\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165036865587\" class=\"problem textbox\">\r\n<div id=\"fs-id1165036891664\">\r\n<p id=\"fs-id1165036859402\">In the preceding problem, the 10-N force is applied at an angle of $$ 45\\text{\u00b0} $$ below the horizontal. What is the speed of the cart when it has been pushed 8.0 m?<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165036754213\" class=\"problem textbox\">\r\n<div id=\"fs-id1165038133870\">\r\n<p id=\"fs-id1165038293766\">Compare the work required to stop a 100-kg crate sliding at 1.0 m\/s and an 8.0-g bullet traveling at 500 m\/s.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1165038217592\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1165038217592\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1165038217592\"]\r\n<p id=\"fs-id1165038183119\">$$W(\\text{bullet})=20\\,\u00d7\\,W(\\text{crate})$$<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165036966322\" class=\"problem textbox\">\r\n<div id=\"fs-id1165037161957\">\r\n<p id=\"fs-id1165038154187\">A wagon with its passenger sits at the top of a hill. The wagon is given a slight push and rolls 100 m down a $$ 10\\text{\u00b0} $$ incline to the bottom of the hill. What is the wagon\u2019s speed when it reaches the end of the incline. Assume that the retarding force of friction is negligible.<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165036763209\" class=\"problem textbox\">\r\n<div id=\"fs-id1165038036506\">\r\n<p id=\"fs-id1165037949221\">An 8.0-g bullet with a speed of 800 m\/s is shot into a wooden block and penetrates 20 cm before stopping. What is the average force of the wood on the bullet? Assume the block does not move.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1165036976729\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1165036976729\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1165036976729\"]\r\n<p id=\"fs-id1165038014121\">12.8 kN<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165038018269\" class=\"problem textbox\">\r\n<div id=\"fs-id1165038313831\">\r\n<p id=\"fs-id1165036754152\">A 2.0-kg block starts with a speed of 10 m\/s at the bottom of a plane inclined at $$ 37\\text{\u00b0} $$ to the horizontal. The coefficient of sliding friction between the block and plane is $$ {\\mu }_{k}=0.30. $$ (a) Use the work-energy principle to determine how far the block slides along the plane before momentarily coming to rest. (b) After stopping, the block slides back down the plane. What is its speed when it reaches the bottom? (<em>Hint:<\/em> For the round trip, only the force of friction does work on the block.)<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165036886605\" class=\"problem textbox\">\r\n<div id=\"fs-id1165036987671\">\r\n<p id=\"fs-id1165038002585\">When a 3.0-kg block is pushed against a massless spring of force constant constant $$ 4.5\\,\u00d7\\,{10}^{3}\\,\\text{N\/m,} $$ the spring is compressed 8.0 cm. The block is released, and it slides 2.0 m (from the point at which it is released) across a horizontal surface before friction stops it. What is the coefficient of kinetic friction between the block and the surface?<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1165037860818\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1165037860818\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1165037860818\"]\r\n<p id=\"fs-id1165038023232\">0.25<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165037207536\" class=\"problem textbox\">\r\n<div id=\"fs-id1165037033140\">\r\n<p id=\"fs-id1165038006131\">A small block of mass 200 g starts at rest at A, slides to B where its speed is $$ {v}_{B}=8.0\\,\\text{m\/s,} $$ then slides along the horizontal surface a distance 10 m before coming to rest at C. (See below.) (a) What is the work of friction along the curved surface? (b) What is the coefficient of kinetic friction along the horizontal surface?<\/p>\r\n<span id=\"fs-id1165037046390\"><img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191444\/CNX_UPhysics_07_03_BlockSlide_img.jpg\" alt=\"A block slides along a track that curves down and then levels off and becomes horizontal. Point A is near the top of the track, 4.0 meters above the horizontal part of the track. Points B and C are on the horizontal section and are separated by 10 meters. The Block starts at point A.\" \/><\/span>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165037862102\" class=\"problem textbox\">\r\n<div id=\"fs-id1165038054438\">\r\n<p id=\"fs-id1165038016034\">A small object is placed at the top of an incline that is essentially frictionless. The object slides down the incline onto a rough horizontal surface, where it stops in 5.0 s after traveling 60 m. (a) What is the speed of the object at the bottom of the incline and its acceleration along the horizontal surface? (b) What is the height of the incline?<\/p>\r\n[reveal-answer q=\"218203\"]Show Solution[\/reveal-answer]\r\n[hidden-answer a=\"218203\"]a. 24 m\/s, \u22124.8 m\/s2; b. 29.4 m[\/hidden-answer]\r\n\r\n<\/div>\r\n<div class=\"solution\"><\/div>\r\n<\/div>\r\n<div id=\"fs-id1165038386323\" class=\"problem textbox\">\r\n<div id=\"fs-id1165037026354\">\r\n<p id=\"fs-id1165038018335\">When released, a 100-g block slides down the path shown below, reaching the bottom with a speed of 4.0 m\/s. How much work does the force of friction do?<\/p>\r\n<span id=\"fs-id1165038046088\"><img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191446\/CNX_UPhysics_07_03_BlockPath_img.jpg\" alt=\"A block slides down an irregularly curved path. The block starts near the top of the path at an elevation of 2.0 meters. At the bottom of the path it is moving horizontally at 4.0 meters per second.\" \/><\/span>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165038017772\" class=\"problem textbox\">\r\n<div id=\"fs-id1165036765859\">\r\n<p id=\"fs-id1165037019252\">A 0.22LR-caliber bullet like that mentioned in <a class=\"autogenerated-content\" href=\"#fs-id1165036746143\">(Figure)<\/a> is fired into a door made of a single thickness of 1-inch pine boards. How fast would the bullet be traveling after it penetrated through the door?<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1165036783544\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1165036783544\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1165036783544\"]\r\n<p id=\"fs-id1165037998318\">310 m\/s<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1165036890190\" class=\"problem textbox\">\r\n<div id=\"fs-id1165037089556\">\r\n<p id=\"fs-id1165038230247\">A sled starts from rest at the top of a snow-covered incline that makes a $$ 22\\text{\u00b0} $$ angle with the horizontal. After sliding 75 m down the slope, its speed is 14 m\/s. Use the work-energy theorem to calculate the coefficient of kinetic friction between the runners of the sled and the snowy surface.<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<\/div>\r\n<div class=\"textbox shaded\">\r\n<h3>Glossary<\/h3>\r\n<dl id=\"fs-id1165037154567\">\r\n \t<dt><strong>net work<\/strong><\/dt>\r\n \t<dd id=\"fs-id1165038010179\">work done by all the forces acting on an object<\/dd>\r\n<\/dl>\r\n<dl id=\"fs-id1165038306067\">\r\n \t<dt><strong>work-energy theorem<\/strong><\/dt>\r\n \t<dd id=\"fs-id1165037270191\">net work done on a particle is equal to the change in its kinetic energy<\/dd>\r\n<\/dl>\r\n<\/div>","rendered":"<div class=\"textbox learning-objectives\">\n<h3>Learning Objectives<\/h3>\n<p>By the end of this section, you will be able to:<\/p>\n<ul>\n<li>Apply the work-energy theorem to find information about the motion of a particle, given the forces acting on it<\/li>\n<li>Use the work-energy theorem to find information about the forces acting on a particle, given information about its motion<\/li>\n<\/ul>\n<\/div>\n<p id=\"fs-id1165036745203\">We have discussed how to find the work done on a particle by the forces that act on it, but how is that work manifested in the motion of the particle? According to Newton\u2019s second law of motion, the sum of all the forces acting on a particle, or the net force, determines the rate of change in the momentum of the particle, or its motion. Therefore, we should consider the work done by all the forces acting on a particle, or the <strong>net work<\/strong>, to see what effect it has on the particle\u2019s motion.<\/p>\n<p id=\"fs-id1165036881803\">Let\u2019s start by looking at the net work done on a particle as it moves over an infinitesimal displacement, which is the dot product of the net force and the displacement: $$ d{W}_{\\text{net}}={\\overset{\\to }{F}}_{\\text{net}}\u00b7d\\overset{\\to }{r}. $$ Newton\u2019s second law tells us that $$ {\\overset{\\to }{F}}_{\\text{net}}=m(d\\overset{\\to }{v}\\text{\/}dt),$$, so $$ d{W}_{\\text{net}}=m(d\\overset{\\to }{v}\\text{\/}dt)\u00b7d\\overset{\\to }{r}. $$ For the mathematical functions describing the motion of a physical particle, we can rearrange the differentials <em>dt<\/em>, etc., as algebraic quantities in this expression, that is,<\/p>\n<div id=\"fs-id1165037178454\" class=\"unnumbered\">$$d{W}_{\\text{net}}=m(\\frac{d\\overset{\\to }{v}}{dt})\u00b7d\\overset{\\to }{r}=md\\overset{\\to }{v}\u00b7(\\frac{d\\overset{\\to }{r}}{dt})=m\\overset{\\to }{v}\u00b7d\\overset{\\to }{v},$$<\/div>\n<p id=\"fs-id1165038158678\">where we substituted the velocity for the time derivative of the displacement and used the commutative property of the dot product [<a href=\"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/2-4-products-of-vectors\/#fs-id1167134952226\">(Equation 2.30)<\/a>]. Since derivatives and integrals of scalars are probably more familiar to you at this point, we express the dot product in terms of Cartesian coordinates before we integrate between any two points <em>A<\/em> and <em>B<\/em> on the particle\u2019s trajectory. This gives us the net work done on the particle:<\/p>\n<div id=\"fs-id1165037271104\">$$\\begin{array}{cc}\\hfill {W}_{\\text{net},AB}&amp; ={\\int }_{A}^{B}(m{v}_{x}d{v}_{x}+m{v}_{y}d{v}_{y}+m{v}_{z}d{v}_{z})\\hfill \\\\ &amp; =\\frac{1}{2}m{|{v}_{x}^{2}+{v}_{y}^{2}+{v}_{z}^{2}|}_{A}^{B}={|\\frac{1}{2}m{v}^{2}|}_{A}^{B}={K}_{B}-{K}_{A}.\\hfill \\end{array}$$<\/div>\n<p id=\"fs-id1165038335952\">In the middle step, we used the fact that the square of the velocity is the sum of the squares of its Cartesian components, and in the last step, we used the definition of the particle\u2019s kinetic energy. This important result is called the <strong>work-energy theorem<\/strong> (<a class=\"autogenerated-content\" href=\"#CNX_UPhysics_07_03_HorsePull\">(Figure)<\/a>).<\/p>\n<div id=\"fs-id1165036884203\">\n<h4>Work-Energy Theorem<\/h4>\n<p id=\"fs-id1165036972359\">The net work done on a particle equals the change in the particle\u2019s kinetic energy:<\/p>\n<div>$${W}_{\\text{net}}={K}_{B}-{K}_{A}.$$<\/div>\n<\/div>\n<div id=\"CNX_UPhysics_07_03_HorsePull\" class=\"wp-caption aligncenter\">\n<div style=\"width: 629px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191429\/CNX_UPhysics_07_03_HorsePull.jpg\" alt=\"A photograph of horses pulling a loaded cart at a fair.\" width=\"619\" height=\"417\" \/><\/p>\n<p class=\"wp-caption-text\"><strong>Figure 7.11<\/strong> Horse pulls are common events at state fairs. The work done by the horses pulling on the load results in a change in kinetic energy of the load, ultimately going faster. (credit: \u201cJassen\u201d\/ Flickr)<\/p>\n<\/div>\n<\/div>\n<p id=\"fs-id1165038275860\">According to this theorem, when an object slows down, its final kinetic energy is less than its initial kinetic energy, the change in its kinetic energy is negative, and so is the net work done on it. If an object speeds up, the net work done on it is positive. When calculating the net work, you must include all the forces that act on an object. If you leave out any forces that act on an object, or if you include any forces that don\u2019t act on it, you will get a wrong result.<\/p>\n<p id=\"fs-id1165037941283\">The importance of the work-energy theorem, and the further generalizations to which it leads, is that it makes some types of calculations much simpler to accomplish than they would be by trying to solve Newton\u2019s second law. For example, in <a href=\"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/introduction-5\/\">Newton\u2019s Laws of Motion<\/a>, we found the speed of an object sliding down a frictionless plane by solving Newton\u2019s second law for the acceleration and using kinematic equations for constant acceleration, obtaining<\/p>\n<div id=\"fs-id1165037936500\" class=\"unnumbered\">$${v}_{\\text{f}}^{2}={v}_{\\text{i}}^{2}+2g({s}_{\\text{f}}-{s}_{\\text{i}})\\text{sin}\\,\\theta ,$$<\/div>\n<p id=\"fs-id1165038293742\">where <em>s<\/em> is the displacement down the plane.<\/p>\n<p>We can also get this result from the work-energy theorem. Since only two forces are acting on the object\u2014gravity and the normal force\u2014and the normal force doesn\u2019t do any work, the net work is just the work done by gravity. This only depends on the object\u2019s weight and the difference in height, so<\/p>\n<div id=\"fs-id1165036746551\" class=\"unnumbered\">$${W}_{\\text{net}}={W}_{\\text{grav}}=\\text{\u2212}mg({y}_{\\text{f}}-{y}_{\\text{i}}),$$<\/div>\n<p id=\"fs-id1165038045401\">where <em>y<\/em> is positive up. The work-energy theorem says that this equals the change in kinetic energy:<\/p>\n<div id=\"fs-id1165037026304\" class=\"unnumbered\">$$\\text{\u2212}mg({y}_{\\text{f}}-{y}_{\\text{i}})=\\frac{1}{2}m({v}_{\\text{f}}^{2}-{v}_{\\text{i}}^{2}).$$<\/div>\n<p id=\"fs-id1165038021515\">Using a right triangle, we can see that $$ ({y}_{\\text{f}}-{y}_{\\text{i}})=({s}_{\\text{f}}-{s}_{\\text{i}})\\text{sin}\\,\\theta , $$ so the result for the final speed is the same.<\/p>\n<p id=\"fs-id1165036784442\">What is gained by using the work-energy theorem? The answer is that for a frictionless plane surface, not much. However, Newton\u2019s second law is easy to solve only for this particular case, whereas the work-energy theorem gives the final speed for any shaped frictionless surface. For an arbitrary curved surface, the normal force is not constant, and Newton\u2019s second law may be difficult or impossible to solve analytically. Constant or not, for motion along a surface, the normal force never does any work, because it\u2019s perpendicular to the displacement. A calculation using the work-energy theorem avoids this difficulty and applies to more general situations.<\/p>\n<div id=\"fs-id1165038197586\" class=\"problem-solving\">\n<h4>Problem-Solving Strategy: Work-Energy Theorem<\/h4>\n<ol id=\"fs-id1165038218352\" type=\"1\">\n<li>Draw a free-body diagram for each force on the object.<\/li>\n<li>Determine whether or not each force does work over the displacement in the diagram. Be sure to keep any positive or negative signs in the work done.<\/li>\n<li>Add up the total amount of work done by each force.<\/li>\n<li>Set this total work equal to the change in kinetic energy and solve for any unknown parameter.<\/li>\n<li>Check your answers. If the object is traveling at a constant speed or zero acceleration, the total work done should be zero and match the change in kinetic energy. If the total work is positive, the object must have sped up or increased kinetic energy. If the total work is negative, the object must have slowed down or decreased kinetic energy.<\/li>\n<\/ol>\n<\/div>\n<div id=\"fs-id1165038363881\" class=\"textbox examples\">\n<h3>Example<\/h3>\n<h4>Loop-the-Loop<\/h4>\n<p>The frictionless track for a toy car includes a <strong><span class=\"no-emphasis\">loop-the-loop<\/span><\/strong> of radius <em>R<\/em>. How high, measured from the bottom of the loop, must the car be placed to start from rest on the approaching section of track and go all the way around the loop?<\/p>\n<div id=\"CNX_UPhysics_07_03_Loop\" class=\"wp-caption aligncenter\">\n<div style=\"width: 490px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191434\/CNX_UPhysics_07_03_Loop.jpg\" alt=\"A track descends to the ground, forms a circular loop of radius R, then continues horizontally at ground level. Point 1 is before the loop, near the start of the track at elevation y sub 1 above the ground. Point 2 is at the top of the loop, at elevation y sub 2 = 2 R. At point 2, there are 2 forces, N and m g. Both forces point vertically down.\" width=\"480\" height=\"244\" \/><\/p>\n<p class=\"wp-caption-text\"><strong>Figure 7.12<\/strong> A frictionless track for a toy car has a loop-the-loop in it. How high must the car start so that it can go around the loop without falling off?<\/p>\n<\/div>\n<\/div>\n<p>&nbsp;<\/p>\n<h4>Strategy<\/h4>\n<p>The free-body diagram at the final position of the object is drawn in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_07_03_Loop\">(Figure)<\/a>. The gravitational work is the only work done over the displacement that is not zero. Since the weight points in the same direction as the net vertical displacement, the total work done by the gravitational force is positive. From the work-energy theorem, the starting height determines the speed of the car at the top of the loop,<\/p>\n<div id=\"fs-id1165038022495\" class=\"unnumbered\">$$mg({y}_{2}-{y}_{1})=\\frac{1}{2}m{v}_{2}{}^{2},$$<\/div>\n<p id=\"fs-id1165038239026\">where the notation is shown in the accompanying figure. At the top of the loop, the normal force and gravity are both down and the acceleration is centripetal, so<\/p>\n<div class=\"unnumbered\">$${a}_{\\text{top}}=\\frac{F}{m}=\\frac{N+mg}{m}=\\frac{{v}_{2}^{2}}{R}.$$<\/div>\n<p id=\"fs-id1165038034300\">The condition for maintaining contact with the track is that there must be some normal force, however slight; that is, $$ N&gt;0$$. Substituting for $$ {v}_{2}^{2} $$ and <em>N<\/em>, we can find the condition for $$ {y}_{1}$$.<\/p>\n<h4>Solution<\/h4>\n<p id=\"fs-id1165038277995\">Implement the steps in the strategy to arrive at the desired result:<\/p>\n<div id=\"fs-id1165037899383\" class=\"unnumbered\">$$N=\\frac{\\text{\u2212}mg+m{v}_{2}^{2}}{R}=\\frac{\\text{\u2212}mg+2mg({y}_{1}-2R)}{R}&gt;0\\text{\u2003}\\text{or}\\text{\u2003}{y}_{1}&gt;\\frac{5R}{2}.$$<\/div>\n<h4>Significance<\/h4>\n<p>On the surface of the loop, the normal component of gravity and the normal contact force must provide the centripetal acceleration of the car going around the loop. The tangential component of gravity slows down or speeds up the car. A child would find out how high to start the car by trial and error, but now that you know the work-energy theorem, you can predict the minimum height (as well as other more useful results) from physical principles. By using the work-energy theorem, you did not have to solve a differential equation to determine the height.<\/p>\n<\/div>\n<div id=\"fs-id1165036872618\" class=\"media-2\">\n<div class=\"textbox exercises\">\n<h3>Check your understanding<\/h3>\n<div id=\"fs-id1165037912099\">\n<p>Suppose the radius of the loop-the-loop in <a class=\"autogenerated-content\" href=\"#fs-id1165038363881\">(Figure)<\/a> is 15 cm and the toy car starts from rest at a height of 45 cm above the bottom. What is its speed at the top of the loop?<\/p>\n<\/div>\n<div id=\"fs-id1165038202150\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1165038202150\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1165038202150\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1165038237523\">$$\\sqrt{3}\\,\\text{m\/s}$$<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<p>&nbsp;<\/p>\n<p id=\"fs-id1165038204963\">Visit Carleton College\u2019s site to see a <a href=\"https:\/\/openstaxcollege.org\/l\/21carcollvidrol\">video<\/a> of a looping rollercoaster.<\/p>\n<\/div>\n<p id=\"fs-id1165037151971\">In situations where the motion of an object is known, but the values of one or more of the forces acting on it are not known, you may be able to use the work-energy theorem to get some information about the forces. Work depends on the force and the distance over which it acts, so the information is provided via their product.<\/p>\n<div id=\"fs-id1165036746143\" class=\"textbox examples\">\n<h3>Example<\/h3>\n<h4>Determining a Stopping Force<\/h4>\n<p>A bullet from a 0.22LR-caliber cartridge has a mass of 40 grains (2.60 g) and a muzzle velocity of 1100 ft.\/s (335 m\/s). It can penetrate eight 1-inch pine boards, each with thickness 0.75 inches. What is the average stopping force exerted by the wood, as shown in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_07_03_Ex2\">(Figure)<\/a>?<\/p>\n<div id=\"CNX_UPhysics_07_03_Ex2\" class=\"wp-caption aligncenter\">\n<div style=\"width: 755px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191437\/CNX_UPhysics_07_03_Ex2.jpg\" alt=\"In figure a, a bullet is moving horizontally at a speed of 335 meters per second toward a set of 8 boards, arranged in a horizontal stack. In figure b, the bullet has passed through the stack of boards and has stopped at the far end of the last board. The stopping distance is indicated as the width of the stack of boards.\" width=\"745\" height=\"190\" \/><\/p>\n<p class=\"wp-caption-text\"><strong>Figure 7.13<\/strong> The boards exert a force to stop the bullet. As a result, the boards do work and the bullet loses kinetic energy.<\/p>\n<\/div>\n<div class=\"wp-caption-text\"><\/div>\n<\/div>\n<h4>Strategy<\/h4>\n<p>We can assume that under the general conditions stated, the bullet loses all its kinetic energy penetrating the boards, so the work-energy theorem says its initial kinetic energy is equal to the average stopping force times the distance penetrated. The change in the bullet\u2019s kinetic energy and the net work done stopping it are both negative, so when you write out the work-energy theorem, with the net work equal to the average force times the stopping distance, that\u2019s what you get. The total thickness of eight 1-inch pine boards that the bullet penetrates is $$ 8\\,\u00d7\\,\\frac{3}{4}\\,\\text{in}\\text{.}=6\\,\\text{in}\\text{.}=15.2\\,\\text{cm}\\text{.}$$<\/p>\n<h4>Solution<\/h4>\n<p id=\"fs-id1165037217195\">Applying the work-energy theorem, we get<\/p>\n<div id=\"fs-id1165038191332\" class=\"unnumbered\">$${W}_{\\text{net}}=\\text{\u2212}{F}_{\\text{ave}}\\text{\u0394}{s}_{\\text{stop}}=\\text{\u2212}{K}_{\\text{initial}},$$<\/div>\n<p id=\"fs-id1165036762223\">so<\/p>\n<div id=\"fs-id1165036779648\" class=\"unnumbered\">$${F}_{\\text{ave}}=\\frac{\\frac{1}{2}m{v}^{2}}{\\text{\u0394}{s}_{\\text{stop}}}=\\frac{\\frac{1}{2}(2.6\\,\u00d7\\,{10}^{-3}\\text{kg}){(335\\,\\text{m\/s})}^{2}}{0.152\\,\\text{m}}=960\\,\\text{N}\\text{.}$$<\/div>\n<h4>Significance<\/h4>\n<p>We could have used Newton\u2019s second law and kinematics in this example, but the work-energy theorem also supplies an answer to less simple situations. The penetration of a bullet, fired vertically upward into a block of wood, is discussed in one section of Asif Shakur\u2019s recent article [\u201cBullet-Block Science Video Puzzle.\u201d <em>The Physics Teacher<\/em> (January 2015) 53(1): 15-16]. If the bullet is fired dead center into the block, it loses all its kinetic energy and penetrates slightly farther than if fired off-center. The reason is that if the bullet hits off-center, it has a little kinetic energy after it stops penetrating, because the block rotates. The work-energy theorem implies that a smaller change in kinetic energy results in a smaller penetration. You will understand more of the physics in this interesting article after you finish reading <a href=\"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/introduction-11\/\">Angular Momentum<\/a>.<\/p>\n<\/div>\n<div id=\"fs-id1165036894997\" class=\"media-2\">\n<p id=\"fs-id1165037057026\">Learn more about work and energy in this <a href=\"https:\/\/openstaxcollege.org\/l\/21PhETSimRamp\">PhET simulation<\/a> called \u201cthe ramp.\u201d Try changing the force pushing the box and the frictional force along the incline. The work and energy plots can be examined to note the total work done and change in kinetic energy of the box.<\/p>\n<\/div>\n<div id=\"fs-id1165038375037\" class=\"textbox key-takeaways\">\n<h3>Summary<\/h3>\n<ul id=\"fs-id1165037979710\">\n<li>Because the net force on a particle is equal to its mass times the derivative of its velocity, the integral for the net work done on the particle is equal to the change in the particle\u2019s kinetic energy. This is the work-energy theorem.<\/li>\n<li>You can use the work-energy theorem to find certain properties of a system, without having to solve the differential equation for Newton\u2019s second law.<\/li>\n<\/ul>\n<\/div>\n<div id=\"fs-id1165036751109\" class=\"review-conceptual-questions\">\n<h3>Conceptual Questions<\/h3>\n<div id=\"fs-id1165036784000\" class=\"problem textbox\">\n<div id=\"fs-id1165038219695\">\n<p id=\"fs-id1165036834178\">The person shown below does work on the lawn mower. Under what conditions would the mower gain energy from the person pushing the mower? Under what conditions would it lose energy?<\/p>\n<p><span id=\"fs-id1165036966253\"><img decoding=\"async\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191440\/CNX_UPhysics_07_03_Mower_img.jpg\" alt=\"A person pushing a lawn mower with a force F. Force is represented by a vector parallel to the mower handle, making an angle theta below the horizontal. The distance moved by the mower is represented by horizontal vector d. The horizontal component of vector F along vector d is F cosine theta. Work done by the person, W, is equal to F d cosine theta.\" \/><\/span><\/p>\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"q617101\">Show Solution<\/span><\/p>\n<div id=\"q617101\" class=\"hidden-answer\" style=\"display: none\">The mower would gain energy if $$ -90\\text{\u00b0}&lt;\\theta &lt;90\\text{\u00b0}. $$ It would lose energy if $$ 90\\text{\u00b0}&lt;\\theta &lt;270\\text{\u00b0}. $$ The mower may also lose energy due to friction with the grass while pushing; however, we are not concerned with that energy loss for this problem.<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165036893822\"><\/div>\n<\/div>\n<div id=\"fs-id1165038018101\" class=\"problem textbox\">\n<div id=\"fs-id1165037972763\">\n<p id=\"fs-id1165036895435\">Work done on a system puts energy into it. Work done by a system removes energy from it. Give an example for each statement.<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165038013807\" class=\"problem textbox\">\n<div id=\"fs-id1165038377232\">\n<p id=\"fs-id1165037214818\">Two marbles of masses <em>m<\/em> and 2<em>m<\/em> are dropped from a height <em>h<\/em>. Compare their kinetic energies when they reach the ground.<\/p>\n<\/div>\n<div id=\"fs-id1165037865497\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1165037865497\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1165037865497\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1165036771142\">The second marble has twice the kinetic energy of the first because kinetic energy is directly proportional to mass, like the work done by gravity.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165038375169\" class=\"problem textbox\">\n<div id=\"fs-id1165038308538\">\n<p id=\"fs-id1165038024755\">Compare the work required to accelerate a car of mass 2000 kg from 30.0 to 40.0 km\/h with that required for an acceleration from 50.0 to 60.0 km\/h.<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165038238873\" class=\"problem textbox\">\n<div id=\"fs-id1165038307806\">\n<p id=\"fs-id1165037848453\">Suppose you are jogging at constant velocity. Are you doing any work on the environment and vice versa?<\/p>\n<\/div>\n<div id=\"fs-id1165036728890\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1165036728890\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1165036728890\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1165036967810\">Unless the environment is nearly frictionless, you are doing some positive work on the environment to cancel out the frictional work against you, resulting in zero total work producing a constant velocity.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165037841106\" class=\"problem textbox\">\n<div id=\"fs-id1165037940254\">\n<p id=\"fs-id1165036895057\">Two forces act to double the speed of a particle, initially moving with kinetic energy of 1 J. One of the forces does 4 J of work. How much work does the other force do?<\/p>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165037968970\" class=\"review-problems textbox exercises\">\n<h3>Problems<\/h3>\n<div id=\"fs-id1165038273128\" class=\"problem textbox\">\n<div id=\"fs-id1165036795802\">\n<p id=\"fs-id1165037935391\">(a) Calculate the force needed to bring a 950-kg car to rest from a speed of 90.0 km\/h in a distance of 120 m (a fairly typical distance for a non-panic stop). (b) Suppose instead the car hits a concrete abutment at full speed and is brought to a stop in 2.00 m. Calculate the force exerted on the car and compare it with the force found in part (a).<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165037909594\" class=\"problem textbox\">\n<div id=\"fs-id1165037213582\">\n<p id=\"fs-id1165038365020\">A car\u2019s bumper is designed to withstand a 4.0-km\/h (1.1-m\/s) collision with an immovable object without damage to the body of the car. The bumper cushions the shock by absorbing the force over a distance. Calculate the magnitude of the average force on a bumper that collapses 0.200 m while bringing a 900-kg car to rest from an initial speed of 1.1 m\/s.<\/p>\n<\/div>\n<div id=\"fs-id1165038034161\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1165038034161\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1165038034161\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1165037179095\">2.72 kN<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165036759677\" class=\"problem textbox\">\n<div id=\"fs-id1165036758380\">\n<p id=\"fs-id1165037167559\">Boxing gloves are padded to lessen the force of a blow. (a) Calculate the force exerted by a boxing glove on an opponent\u2019s face, if the glove and face compress 7.50 cm during a blow in which the 7.00-kg arm and glove are brought to rest from an initial speed of 10.0 m\/s. (b) Calculate the force exerted by an identical blow in the gory old days when no gloves were used, and the knuckles and face would compress only 2.00 cm. Assume the change in mass by removing the glove is negligible. (c) Discuss the magnitude of the force with glove on. Does it seem high enough to cause damage even though it is lower than the force with no glove?<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165037867393\" class=\"problem textbox\">\n<div id=\"fs-id1165037983879\">\n<p id=\"fs-id1165038046664\">Using energy considerations, calculate the average force a 60.0-kg sprinter exerts backward on the track to accelerate from 2.00 to 8.00 m\/s in a distance of 25.0 m, if he encounters a headwind that exerts an average force of 30.0 N against him.<\/p>\n<\/div>\n<div id=\"fs-id1165038006594\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1165038006594\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1165038006594\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1165037221080\">102 N<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165038132596\" class=\"problem textbox\">\n<div id=\"fs-id1165037056894\">\n<p id=\"fs-id1165038058069\">A 5.0-kg box has an acceleration of $$ 2.0{\\,\\text{m\/s}}^{2} $$ when it is pulled by a horizontal force across a surface with $$ {\\mu }_{K}=0.50. $$ Find the work done over a distance of 10 cm by (a) the horizontal force, (b) the frictional force, and (c) the net force. (d) What is the change in kinetic energy of the box?<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165038183594\">\n<div class=\"textbox\">\n<div>\n<p id=\"fs-id1165037948977\">A constant 10-N horizontal force is applied to a 20-kg cart at rest on a level floor. If friction is negligible, what is the speed of the cart when it has been pushed 8.0 m?<\/p>\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"q607788\">Show Solution<\/span><\/p>\n<div id=\"q607788\" class=\"hidden-answer\" style=\"display: none\">2.8 m\/s<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165037935511\"><\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165036865587\" class=\"problem textbox\">\n<div id=\"fs-id1165036891664\">\n<p id=\"fs-id1165036859402\">In the preceding problem, the 10-N force is applied at an angle of $$ 45\\text{\u00b0} $$ below the horizontal. What is the speed of the cart when it has been pushed 8.0 m?<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165036754213\" class=\"problem textbox\">\n<div id=\"fs-id1165038133870\">\n<p id=\"fs-id1165038293766\">Compare the work required to stop a 100-kg crate sliding at 1.0 m\/s and an 8.0-g bullet traveling at 500 m\/s.<\/p>\n<\/div>\n<div id=\"fs-id1165038217592\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1165038217592\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1165038217592\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1165038183119\">$$W(\\text{bullet})=20\\,\u00d7\\,W(\\text{crate})$$<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165036966322\" class=\"problem textbox\">\n<div id=\"fs-id1165037161957\">\n<p id=\"fs-id1165038154187\">A wagon with its passenger sits at the top of a hill. The wagon is given a slight push and rolls 100 m down a $$ 10\\text{\u00b0} $$ incline to the bottom of the hill. What is the wagon\u2019s speed when it reaches the end of the incline. Assume that the retarding force of friction is negligible.<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165036763209\" class=\"problem textbox\">\n<div id=\"fs-id1165038036506\">\n<p id=\"fs-id1165037949221\">An 8.0-g bullet with a speed of 800 m\/s is shot into a wooden block and penetrates 20 cm before stopping. What is the average force of the wood on the bullet? Assume the block does not move.<\/p>\n<\/div>\n<div id=\"fs-id1165036976729\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1165036976729\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1165036976729\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1165038014121\">12.8 kN<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165038018269\" class=\"problem textbox\">\n<div id=\"fs-id1165038313831\">\n<p id=\"fs-id1165036754152\">A 2.0-kg block starts with a speed of 10 m\/s at the bottom of a plane inclined at $$ 37\\text{\u00b0} $$ to the horizontal. The coefficient of sliding friction between the block and plane is $$ {\\mu }_{k}=0.30. $$ (a) Use the work-energy principle to determine how far the block slides along the plane before momentarily coming to rest. (b) After stopping, the block slides back down the plane. What is its speed when it reaches the bottom? (<em>Hint:<\/em> For the round trip, only the force of friction does work on the block.)<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165036886605\" class=\"problem textbox\">\n<div id=\"fs-id1165036987671\">\n<p id=\"fs-id1165038002585\">When a 3.0-kg block is pushed against a massless spring of force constant constant $$ 4.5\\,\u00d7\\,{10}^{3}\\,\\text{N\/m,} $$ the spring is compressed 8.0 cm. The block is released, and it slides 2.0 m (from the point at which it is released) across a horizontal surface before friction stops it. What is the coefficient of kinetic friction between the block and the surface?<\/p>\n<\/div>\n<div id=\"fs-id1165037860818\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1165037860818\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1165037860818\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1165038023232\">0.25<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165037207536\" class=\"problem textbox\">\n<div id=\"fs-id1165037033140\">\n<p id=\"fs-id1165038006131\">A small block of mass 200 g starts at rest at A, slides to B where its speed is $$ {v}_{B}=8.0\\,\\text{m\/s,} $$ then slides along the horizontal surface a distance 10 m before coming to rest at C. (See below.) (a) What is the work of friction along the curved surface? (b) What is the coefficient of kinetic friction along the horizontal surface?<\/p>\n<p><span id=\"fs-id1165037046390\"><img decoding=\"async\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191444\/CNX_UPhysics_07_03_BlockSlide_img.jpg\" alt=\"A block slides along a track that curves down and then levels off and becomes horizontal. Point A is near the top of the track, 4.0 meters above the horizontal part of the track. Points B and C are on the horizontal section and are separated by 10 meters. The Block starts at point A.\" \/><\/span><\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165037862102\" class=\"problem textbox\">\n<div id=\"fs-id1165038054438\">\n<p id=\"fs-id1165038016034\">A small object is placed at the top of an incline that is essentially frictionless. The object slides down the incline onto a rough horizontal surface, where it stops in 5.0 s after traveling 60 m. (a) What is the speed of the object at the bottom of the incline and its acceleration along the horizontal surface? (b) What is the height of the incline?<\/p>\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"q218203\">Show Solution<\/span><\/p>\n<div id=\"q218203\" class=\"hidden-answer\" style=\"display: none\">a. 24 m\/s, \u22124.8 m\/s2; b. 29.4 m<\/div>\n<\/div>\n<\/div>\n<div class=\"solution\"><\/div>\n<\/div>\n<div id=\"fs-id1165038386323\" class=\"problem textbox\">\n<div id=\"fs-id1165037026354\">\n<p id=\"fs-id1165038018335\">When released, a 100-g block slides down the path shown below, reaching the bottom with a speed of 4.0 m\/s. How much work does the force of friction do?<\/p>\n<p><span id=\"fs-id1165038046088\"><img decoding=\"async\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31191446\/CNX_UPhysics_07_03_BlockPath_img.jpg\" alt=\"A block slides down an irregularly curved path. The block starts near the top of the path at an elevation of 2.0 meters. At the bottom of the path it is moving horizontally at 4.0 meters per second.\" \/><\/span><\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1165038017772\" class=\"problem textbox\">\n<div id=\"fs-id1165036765859\">\n<p id=\"fs-id1165037019252\">A 0.22LR-caliber bullet like that mentioned in <a class=\"autogenerated-content\" href=\"#fs-id1165036746143\">(Figure)<\/a> is fired into a door made of a single thickness of 1-inch pine boards. How fast would the bullet be traveling after it penetrated through the door?<\/p>\n<\/div>\n<div id=\"fs-id1165036783544\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1165036783544\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1165036783544\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1165037998318\">310 m\/s<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1165036890190\" class=\"problem textbox\">\n<div id=\"fs-id1165037089556\">\n<p id=\"fs-id1165038230247\">A sled starts from rest at the top of a snow-covered incline that makes a $$ 22\\text{\u00b0} $$ angle with the horizontal. After sliding 75 m down the slope, its speed is 14 m\/s. Use the work-energy theorem to calculate the coefficient of kinetic friction between the runners of the sled and the snowy surface.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"textbox shaded\">\n<h3>Glossary<\/h3>\n<dl id=\"fs-id1165037154567\">\n<dt><strong>net work<\/strong><\/dt>\n<dd id=\"fs-id1165038010179\">work done by all the forces acting on an object<\/dd>\n<\/dl>\n<dl id=\"fs-id1165038306067\">\n<dt><strong>work-energy theorem<\/strong><\/dt>\n<dd id=\"fs-id1165037270191\">net work done on a particle is equal to the change in its kinetic energy<\/dd>\n<\/dl>\n<\/div>\n\n\t\t\t <section class=\"citations-section\" role=\"contentinfo\">\n\t\t\t <h3>Candela Citations<\/h3>\n\t\t\t\t\t <div>\n\t\t\t\t\t\t <div id=\"citation-list-677\">\n\t\t\t\t\t\t\t <div class=\"licensing\"><div class=\"license-attribution-dropdown-subheading\">CC licensed content, Shared previously<\/div><ul class=\"citation-list\"><li>OpenStax University Physics. <strong>Authored by<\/strong>: OpenStax CNX. <strong>Located at<\/strong>: <a target=\"_blank\" href=\"https:\/\/cnx.org\/contents\/1Q9uMg_a@10.16:Gofkr9Oy@15\">https:\/\/cnx.org\/contents\/1Q9uMg_a@10.16:Gofkr9Oy@15<\/a>. <strong>License<\/strong>: <em><a target=\"_blank\" rel=\"license\" href=\"https:\/\/creativecommons.org\/licenses\/by\/4.0\/\">CC BY: Attribution<\/a><\/em>. <strong>License Terms<\/strong>: Download for free at http:\/\/cnx.org\/contents\/d50f6e32-0fda-46ef-a362-9bd36ca7c97d@10.16<\/li><\/ul><\/div>\n\t\t\t\t\t\t <\/div>\n\t\t\t\t\t <\/div>\n\t\t\t <\/section>","protected":false},"author":311,"menu_order":4,"template":"","meta":{"_candela_citation":"[{\"type\":\"cc\",\"description\":\"OpenStax University Physics\",\"author\":\"OpenStax CNX\",\"organization\":\"\",\"url\":\"https:\/\/cnx.org\/contents\/1Q9uMg_a@10.16:Gofkr9Oy@15\",\"project\":\"\",\"license\":\"cc-by\",\"license_terms\":\"Download for free at http:\/\/cnx.org\/contents\/d50f6e32-0fda-46ef-a362-9bd36ca7c97d@10.16\"}]","CANDELA_OUTCOMES_GUID":"","pb_show_title":"on","pb_short_title":"","pb_subtitle":"","pb_authors":[],"pb_section_license":"all-rights-reserved"},"chapter-type":[],"contributor":[],"license":[56],"class_list":["post-677","chapter","type-chapter","status-publish","hentry","license-all-rights-reserved"],"part":670,"_links":{"self":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapters\/677","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapters"}],"about":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/wp\/v2\/types\/chapter"}],"author":[{"embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/wp\/v2\/users\/311"}],"version-history":[{"count":7,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapters\/677\/revisions"}],"predecessor-version":[{"id":2131,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapters\/677\/revisions\/2131"}],"part":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/parts\/670"}],"metadata":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapters\/677\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/wp\/v2\/media?parent=677"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapter-type?post=677"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/wp\/v2\/contributor?post=677"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/wp\/v2\/license?post=677"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}