{"id":1232,"date":"2018-02-06T17:44:47","date_gmt":"2018-02-06T17:44:47","guid":{"rendered":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/?post_type=chapter&#038;p=1232"},"modified":"2018-03-01T16:26:14","modified_gmt":"2018-03-01T16:26:14","slug":"15-2-energy-in-simple-harmonic-motion","status":"publish","type":"chapter","link":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/15-2-energy-in-simple-harmonic-motion\/","title":{"raw":"15.2 Energy in Simple Harmonic Motion","rendered":"15.2 Energy in Simple Harmonic Motion"},"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>Describe the energy conservation of the system of a mass and a spring<\/li>\r\n \t<li>Explain the concepts of stable and unstable equilibrium points<\/li>\r\n<\/ul>\r\n<\/div>\r\n<p id=\"fs-id1167132625825\">To produce a deformation in an object, we must do work. That is, whether you pluck a guitar string or compress a car\u2019s shock absorber, a force must be exerted through a distance. If the only result is deformation, and no work goes into thermal, sound, or kinetic energy, then all the work is initially stored in the deformed object as some form of potential energy.<\/p>\r\n<p id=\"fs-id1167132616891\">Consider the example of a block attached to a spring on a frictionless table, oscillating in SHM. The force of the spring is a conservative force (which you studied in the chapter on potential energy and conservation of energy), and we can define a potential energy for it. This potential energy is the energy stored in the spring when the spring is extended or compressed. In this case, the block oscillates in one dimension with the force of the spring acting parallel to the motion:<\/p>\r\n\r\n<div id=\"fs-id1167132504113\" class=\"unnumbered\">$$W=\\underset{{x}_{i}}{\\overset{{x}_{f}}{\\int }}{F}_{x}dx=\\underset{{x}_{i}}{\\overset{{x}_{f}}{\\int }}\\text{\u2212}kxdx={[-\\frac{1}{2}k{x}^{2}]}_{{x}_{i}}^{{x}_{f}}=\\text{\u2212}[\\frac{1}{2}k{x}_{f}^{2}-\\frac{1}{2}k{x}_{i}^{2}]=\\text{\u2212}[{U}_{f}-{U}_{i}]=\\text{\u2212}\\text{\u0394}U.$$<\/div>\r\n<p id=\"fs-id1167133739608\">When considering the energy stored in a spring, the equilibrium position, marked as $$ {x}_{i}=0.00\\,\\text{m,} $$ is the position at which the energy stored in the spring is equal to zero. When the spring is stretched or compressed a distance <em>x<\/em>, the potential energy stored in the spring is<\/p>\r\n\r\n<div id=\"fs-id1167128853370\" class=\"unnumbered\">$$U=\\frac{1}{2}k{x}^{2}.$$<\/div>\r\n<div id=\"fs-id1167133525430\" class=\"bc-section section\">\r\n<h3>Energy and the Simple Harmonic Oscillator<\/h3>\r\n<p id=\"fs-id1167132338789\">To study the energy of a simple harmonic oscillator, we need to consider all the forms of energy. Consider the example of a block attached to a spring, placed on a frictionless surface, oscillating in SHM. The potential energy stored in the deformation of the spring is<\/p>\r\n\r\n<div id=\"fs-id1167133525426\" class=\"unnumbered\">$$U=\\frac{1}{2}k{x}^{2}.$$<\/div>\r\n<p id=\"fs-id1167132382791\">In a <strong><span class=\"no-emphasis\">simple harmonic oscillator<\/span><\/strong>, the energy oscillates between kinetic energy of the mass $$ K=\\frac{1}{2}m{v}^{2} $$ and potential energy $$ U=\\frac{1}{2}k{x}^{2} $$ stored in the spring. In the SHM of the mass and spring system, there are no dissipative forces, so the total energy is the sum of the potential energy and kinetic energy. In this section, we consider the conservation of energy of the system. The concepts examined are valid for all simple harmonic oscillators, including those where the gravitational force plays a role.<\/p>\r\n<p id=\"fs-id1167133638018\">Consider <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_EnergyStSp\">(Figure)<\/a>, which shows an oscillating block attached to a spring. In the case of undamped SHM, the energy oscillates back and forth between kinetic and potential, going completely from one form of energy to the other as the system oscillates. So for the simple example of an object on a frictionless surface attached to a spring, the motion starts with all of the energy stored in the spring as <strong>elastic potential energy<\/strong>. As the object starts to move, the elastic potential energy is converted into kinetic energy, becoming entirely kinetic energy at the equilibrium position. The energy is then converted back into elastic potential energy by the spring as it is stretched or compressed. The velocity becomes zero when the kinetic energy is completely converted, and this cycle then repeats. Understanding the conservation of energy in these cycles will provide extra insight here and in later applications of SHM, such as alternating circuits.<\/p>\r\n\r\n<div id=\"CNX_UPhysics_15_02_EnergyStSp\" class=\"wp-caption aligncenter\">[caption id=\"\" align=\"aligncenter\" width=\"736\"]<img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31200810\/CNX_UPhysics_15_02_EnergyStSp.jpg\" alt=\"The motion and energy of a mass attached to a horizontal spring, spring constant k, at various points in its motion. In figure (a) the mass is displaced to a position x = A to the right of x =0 and released from rest (v=0.) The spring is stretched. The force on the mass is to the left. The diagram is labeled with one half k A squared. (b) The mass is at x = 0 and moving in the negative x-direction with velocity \u2013 v sub max. The spring is relaxed. The Force on the mass is zero. The diagram is labeled with one half m quantity v sub max squared. (c) The mass is at minus A, to the left of x = 0 and is at rest (v =0.) The spring is compressed. The force F is to the right. The diagram is labeled with one half k quantity minus A squared. (d) The mass is at x = 0 and moving in the positive x-direction with velocity plus v sub max. The spring is relaxed. The Force on the mass is zero. The diagram is labeled with one half m v sub max squared. (e) the mass is again at x = A to the right of x =0. The diagram is labeled with one half k A squared.\" width=\"736\" height=\"538\" \/> <strong>Figure 15.10<\/strong> The transformation of energy in SHM for an object attached to a spring on a frictionless surface. (a) When the mass is at the position $$ x=+A$$, all the energy is stored as potential energy in the spring $$ U=\\frac{1}{2}k{A}^{2}$$. The kinetic energy is equal to zero because the velocity of the mass is zero. (b) As the mass moves toward $$ x=\\text{\u2212}A$$, the mass crosses the position $$ x=0$$. At this point, the spring is neither extended nor compressed, so the potential energy stored in the spring is zero. At $$ x=0$$, the total energy is all kinetic energy where $$ K=\\frac{1}{2}m{(\\text{\u2212}{v}_{\\text{max}})}^{2}$$. (c) The mass continues to move until it reaches $$ x=\\text{\u2212}A $$ where the mass stops and starts moving toward $$ x=+A$$. At the position $$ x=\\text{\u2212}A$$, the total energy is stored as potential energy in the compressed $$ U=\\frac{1}{2}k{(\\text{\u2212}A)}^{2} $$ and the kinetic energy is zero. (d) As the mass passes through the position $$ x=0$$, the kinetic energy is $$ K=\\frac{1}{2}m{v}_{\\text{max}}^{2} $$ and the potential energy stored in the spring is zero. (e) The mass returns to the position $$ x=+A$$, where $$ K=0 $$ and $$ U=\\frac{1}{2}k{A}^{2}$$.[\/caption]<\/div>\r\n<p id=\"fs-id1167128976397\">Consider <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_EnergyStSp\">(Figure)<\/a>, which shows the energy at specific points on the periodic motion. While staying constant, the energy oscillates between the kinetic energy of the block and the potential energy stored in the spring:<\/p>\r\n\r\n<div id=\"fs-id1167133745266\" class=\"unnumbered\">$${E}_{\\text{Total}}=U+K=\\frac{1}{2}k{x}^{2}+\\frac{1}{2}m{v}^{2}.$$<\/div>\r\n<p id=\"fs-id1167133567247\">The motion of the block on a spring in SHM is defined by the position $$ x(t)=A\\text{cos}(\\omega t+\\varphi ) $$ with a velocity of $$ v(t)=\\text{\u2212}A\\omega \\text{sin}(\\omega t+\\varphi )$$. Using these equations, the trigonometric identity $$ {\\text{cos}}^{2}\\theta +{\\text{sin}}^{2}\\theta =1 $$ and $$ \\omega =\\sqrt{\\frac{k}{m}}$$, we can find the total energy of the system:<\/p>\r\n\r\n<div id=\"fs-id1167132740555\" class=\"unnumbered\">$$\\begin{array}{cc}\\hfill {E}_{\\text{Total}}&amp; =\\frac{1}{2}k{A}^{2}{\\text{cos}}^{2}(\\omega t+\\varphi )+\\frac{1}{2}m{A}^{2}{\\omega }^{2}{\\text{sin}}^{2}(\\omega t+\\varphi )\\hfill \\\\ &amp; =\\frac{1}{2}k{A}^{2}{\\text{cos}}^{2}(\\omega t+\\varphi )+\\frac{1}{2}m{A}^{2}(\\frac{k}{m}){\\text{sin}}^{2}(\\omega t+\\varphi )\\hfill \\\\ &amp; =\\frac{1}{2}k{A}^{2}{\\text{cos}}^{2}(\\omega t+\\varphi )+\\frac{1}{2}k{A}^{2}{\\text{sin}}^{2}(\\omega t+\\varphi )\\hfill \\\\ &amp; =\\frac{1}{2}k{A}^{2}({\\text{cos}}^{2}(\\omega t+\\varphi )+{\\text{sin}}^{2}(\\omega t+\\varphi ))\\hfill \\\\ &amp; =\\frac{1}{2}k{A}^{2}.\\hfill \\end{array}$$<\/div>\r\n<p id=\"fs-id1167133529862\">The total energy of the system of a block and a spring is equal to the sum of the potential energy stored in the spring plus the kinetic energy of the block and is proportional to the square of the amplitude $$ {E}_{\\text{Total}}=(1\\text{\/}2)k{A}^{2}. $$ The total energy of the system is constant.<\/p>\r\n<p id=\"fs-id1167132338512\">A closer look at the energy of the system shows that the kinetic energy oscillates like a sine-squared function, while the potential energy oscillates like a cosine-squared function. However, the total energy for the system is constant and is proportional to the amplitude squared. <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_EnerTotSpr\">(Figure)<\/a> shows a plot of the potential, kinetic, and total energies of the block and spring system as a function of time. Also plotted are the position and velocity as a function of time. Before time $$ t=0.0\\,\\text{s,} $$ the block is attached to the spring and placed at the equilibrium position. Work is done on the block by applying an external force, pulling it out to a position of $$ x=+A$$. The system now has potential energy stored in the spring. At time $$ t=0.00\\,\\text{s,} $$ the position of the block is equal to the amplitude, the potential energy stored in the spring is equal to $$ U=\\frac{1}{2}k{A}^{2}$$, and the force on the block is maximum and points in the negative <em>x<\/em>-direction $$ ({F}_{S}=\\text{\u2212}kA)$$. The velocity and kinetic energy of the block are zero at time $$ t=0.00\\,\\text{s}\\text{.} $$ At time $$ t=0.00\\,\\text{s,} $$ the block is released from rest.<\/p>\r\n\r\n<div id=\"CNX_UPhysics_15_02_EnerTotSpr\" class=\"wp-caption aligncenter\">\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"930\"]<img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31200814\/CNX_UPhysics_15_02_EnerTotSpr.jpg\" alt=\"Graphs of the energy, position, and velocity as functions of time for a mass on a spring. On the left is the graph of energy in Joules (J) versus time in seconds. The vertical axis range is zero to one half k A squared. The horizontal axis range is zero to T. Three curves are shown. The total energy E sub total is shown as a green line. The total energy is a constant at a value of one half k A squared. The kinetic energy K equals one half m v squared is shown as a red curve. K starts at zero energy at t=0, and rises to a maximum value of one half k A squared at time 1\/4 T, then decreases to zero at 1\/2 T, rises to one half k A squared at 3\/4 T, and is zero again at T. Potential energy U equals one half k x squared is shown as a blue curve. U starts at maximum energy of one half k A squared at t=0, decreases to zero at 1\/4 T, rises to one half k A squared at 1\/2 T, is zero again at 3\/4 T and is at the maximum of one half k A squared again at t=T. On the right is a graph of position versus time above a graph of velocity versus time. The position graph has x in meters, ranging from \u2013A to +A, versus time in seconds. The position is at +A and decreasing at t=0, reaches a minimum of \u2013A, then rises to +A. The velocity graph has v in m\/s, ranging from minus v sub max to plus v sub max, versus time in seconds. The velocity is zero and decreasing at t=0, and reaches a minimum of minus v sub max at the same time that the position graph is zero. The velocity is zero again when the position is at x=-A, rises to plus v sub max when the position is zero, and v=0 at the end of the graph, where the position Is again maximum.\" width=\"930\" height=\"434\" \/> <strong>Figure 15.12<\/strong> Graph of the kinetic energy, potential energy, and total energy of a block oscillating on a spring in SHM. Also shown are the graphs of position versus time and velocity versus time. The total energy remains constant, but the energy oscillates between kinetic energy and potential energy. When the kinetic energy is maximum, the potential energy is zero. This occurs when the velocity is maximum and the mass is at the equilibrium position. The potential energy is maximum when the speed is zero. The total energy is the sum of the kinetic energy plus the potential energy and it is constant.[\/caption]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167132427370\" class=\"bc-section section\">\r\n<h3>Oscillations About an Equilibrium Position<\/h3>\r\n<p id=\"fs-id1167128851134\">We have just considered the energy of SHM as a function of time. Another interesting view of the simple harmonic oscillator is to consider the energy as a function of position. <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_SHMEnrgPos\">(Figure)<\/a> shows a graph of the energy versus position of a system undergoing SHM.<\/p>\r\n\r\n<div id=\"CNX_UPhysics_15_02_SHMEnrgPos\" class=\"wp-caption aligncenter\">[caption id=\"\" align=\"aligncenter\" width=\"566\"]<img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31200818\/CNX_UPhysics_15_02_SHMEnrgPos.jpg\" alt=\"Graph of energy E in Joules on the vertical axis versus position x in meters on the horizontal axis. The horizontal axis had x=0 labeled as the equilibrium position with F=0. Positions x=-A and x=+A are labeled as turning points. A concave down parabola in red, labeled as K, has its maximum value of E=E total at x=0 and is zero at x=-A and x=+A. A horizontal green line at a constant E value of E total is labeled as E total. A concave up parabola in blue, labeled as U, intersects the green line with a value of E=E total at x=-A and x=+A and is zero at x=0. The region of the graph to the left of x=0 is labeled with a red arrow pointing to the right and the equation F equals minus the derivative of U with respect to x. The region of the graph to the right of x=0 is labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x.\" width=\"566\" height=\"427\" \/> <strong>Figure 15.13<\/strong> A graph of the kinetic energy (red), potential energy (blue), and total energy (green) of a simple harmonic oscillator. The force is equal to $$ F=-\\frac{dU}{dx}$$. The equilibrium position is shown as a black dot and is the point where the force is equal to zero. The force is positive when $$ x&lt;0$$, negative when $$ x&gt;0$$, and equal to zero when $$ x=0$$.[\/caption]<\/div>\r\n<p id=\"fs-id1167132495725\">The potential energy curve in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_SHMEnrgPos\">(Figure)<\/a> resembles a bowl. When a marble is placed in a bowl, it settles to the equilibrium position at the lowest point of the bowl $$ (x=0)$$. This happens because a <strong>restoring force<\/strong> points toward the equilibrium point. This equilibrium point is sometimes referred to as a <em>fixed point<\/em>. When the marble is disturbed to a different position $$ (x=+A)$$, the marble oscillates around the equilibrium position. Looking back at the graph of potential energy, the force can be found by looking at the slope of the potential energy graph $$ (F=-\\frac{dU}{dx})$$. Since the force on either side of the fixed point points back toward the equilibrium point, the equilibrium point is called a <strong>stable equilibrium point<\/strong>. The points $$ x=A $$ and $$ x=\\text{\u2212}A $$ are called the <span class=\"no-emphasis\">turning points<\/span>. (See <a class=\"target-chapter\" href=\"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/introduction-8\/\">Potential Energy and Conservation of Energy<\/a>.)<\/p>\r\n<p id=\"fs-id1167132239306\"><span class=\"no-emphasis\">Stability<\/span> is an important concept. If an equilibrium point is stable, a slight disturbance of an object that is initially at the stable equilibrium point will cause the object to oscillate around that point. The stable equilibrium point occurs because the force on either side is directed toward it. For an unstable equilibrium point, if the object is disturbed slightly, it does not return to the equilibrium point.<\/p>\r\n<p id=\"fs-id1167132722356\">Consider the marble in the bowl example. If the bowl is right-side up, the marble, if disturbed slightly, will oscillate around the stable equilibrium point. If the bowl is turned upside down, the marble can be balanced on the top, at the equilibrium point where the net force is zero. However, if the marble is disturbed slightly, it will not return to the equilibrium point, but will instead roll off the bowl. The reason is that the force on either side of the equilibrium point is directed away from that point. This point is an unstable equilibrium point.<\/p>\r\n<p id=\"fs-id1167133655285\"><a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_BowlFixPT\">(Figure)<\/a> shows three conditions. The first is a stable equilibrium point (a), the second is an unstable equilibrium point (b), and the last is also an unstable equilibrium point (c), because the force on only one side points toward the equilibrium point.<\/p>\r\n\r\n<div id=\"CNX_UPhysics_15_02_BowlFixPT\" class=\"wp-caption aligncenter\">\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"823\"]<img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31200821\/CNX_UPhysics_15_02_BowlFixPT.jpg\" alt=\"Three illustrations of a ball on a surface. In figure a, stable equilibrium point, the ball is inside a concave-up surface, at the bottom. A filled circle under the surface, below the ball, has two horizontal arrows labeled as F pointing toward it from either side. Gray arrows tangent to the surface are shown inside the surface, pointing down the slope, toward the ball\u2019s position. In figure b, unstable equilibrium point, the ball is on top of a concave-down surface, at the top. An empty circle under the surface, below the ball, has two horizontal arrows labeled as F pointing away it from either side. Gray arrows tangent to the surface are shown inside the surface, pointing down the slope, away from the ball\u2019s position. In figure c, unstable equilibrium point, the ball is on the inflection point of a surface. A half-filled circle under the surface, below the ball, has two horizontal arrows labeled as F, one on either side of the circle, both pointing to the left. Gray arrows tangent to the surface are shown inside the surface, pointing down the slope, one toward the ball and the other away from it.\" width=\"823\" height=\"249\" \/> <strong>Figure 15.14<\/strong> Examples of equilibrium points. (a) Stable equilibrium point; (b) unstable equilibrium point; (c) unstable equilibrium point (sometimes referred to as a half-stable equilibrium point).[\/caption]\r\n\r\n<\/div>\r\n<p id=\"fs-id1167133353606\">The process of determining whether an equilibrium point is stable or unstable can be formalized. Consider the potential energy curves shown in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_BowlFixed\">(Figure)<\/a>. The force can be found by analyzing the slope of the graph. The force is $$ F=-\\frac{dU}{dx}. $$ In (a), the fixed point is at $$ x=0.00\\,\\text{m}\\text{.} $$ When $$ x&lt;0.00\\,\\text{m,} $$ the force is positive. When $$ x&gt;0.00\\,\\text{m,} $$ the force is negative. This is a stable point. In (b), the fixed point is at $$ x=0.00\\,\\text{m}\\text{.} $$ When $$ x&lt;0.00\\,\\text{m,} $$ the force is negative. When $$ x&gt;0.00\\,\\text{m,} $$ the force is also negative. This is an unstable point.<\/p>\r\n\r\n<div id=\"CNX_UPhysics_15_02_BowlFixed\" class=\"wp-caption aligncenter\">\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"890\"]<img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31200825\/CNX_UPhysics_15_02_BowlFixed.jpg\" alt=\"Two graphs of U in Joules on the vertical axis as a function of x in meters on the horizontal axis. In figure a, U of x is an upward opening parabola whose vertex is marked with a black dot and is at x=0, U=0. The region of the graph to the left of x=0 is labeled with a red arrow pointing to the right and the equation F equals minus the derivative of U with respect to x is greater than zero. The region of the graph to the right of x=0 is labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x is less than zero. Below the graph is a copy of the dot between copies of the red arrows and the force relations, F equals minus the derivative of U with respect to x is greater than zero on the left and F equals minus the derivative of U with respect to x is less than zero on the right. In figure b, U of x is an increasing function with an inflection point that is marked with a half filled circle at x=0, U=0. The region of the graph to the left of x=0 is labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x is less than zero. The region of the graph to the right of x=0 is also labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x is less than zero. Below the graph is a copy of the circle between copies of the red arrows, both of which point to the left, and the force relations, F equals minus the derivative of U with respect to x is less than zero on the left and F equals minus the derivative of U with respect to x is less than zero on the right.\" width=\"890\" height=\"450\" \/> <strong>Figure 15.15<\/strong> Two examples of a potential energy function. The force at a position is equal to the negative of the slope of the graph at that position. (a) A potential energy function with a stable equilibrium point. (b) A potential energy function with an unstable equilibrium point. This point is sometimes called half-stable because the force on one side points toward the fixed point.[\/caption]\r\n\r\n<\/div>\r\n<p id=\"fs-id1167129102553\">A practical application of the concept of stable equilibrium points is the force between two neutral atoms in a molecule. If two molecules are in close proximity, separated by a few atomic diameters, they can experience an attractive force. If the molecules move close enough so that the electron shells of the other electrons overlap, the force between the molecules becomes repulsive. The attractive force between the two atoms may cause the atoms to form a molecule. The force between the two molecules is not a linear force and cannot be modeled simply as two masses separated by a spring, but the atoms of the molecule can oscillate around an equilibrium point when displaced a small amount from the equilibrium position. The atoms oscillate due the attractive force and repulsive force between the two atoms.<\/p>\r\n<p id=\"fs-id1167132259694\">Consider one example of the interaction between two atoms known as the van Der Waals interaction. It is beyond the scope of this chapter to discuss in depth the interactions of the two atoms, but the oscillations of the atoms can be examined by considering one example of a model of the potential energy of the system. One suggestion to model the potential energy of this molecule is with the <span class=\"no-emphasis\">Lennard-Jones 6-12 potential<\/span>:<\/p>\r\n\r\n<div id=\"fs-id1167132305258\" class=\"unnumbered\">$$U(x)=4\\epsilon [{(\\frac{\\sigma }{x})}^{12}-{(\\frac{\\sigma }{x})}^{6}].$$<\/div>\r\n<p id=\"fs-id1167133773486\">A graph of this function is shown in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_LennaJones\">(Figure)<\/a>. The two parameters $$ \\epsilon  $$ and $$ \\sigma  $$ are found experimentally.<\/p>\r\n\r\n<div id=\"CNX_UPhysics_15_02_LennaJones\" class=\"wp-caption aligncenter\">\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"620\"]<img src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/2952\/2018\/01\/31200829\/CNX_UPhysics_15_02_LennaJones.jpg\" alt=\"An annotated graph of E in Joules on the vertical axis as a function of x in meters on the horizontal axis. The Lennard-Jones potential, U, is shown as a blue curve that is large and positive at small x. It decreases rapidly, becomes negative, and continues to decrease until it reaches a minimum value at a position marked as the equilibrium position, F=0, then gradually increases and approaches E=0 asymptotically but remains negative. A horizontal green line of constant, negative value is labeled as E total. The green and blue E total and U curves cross at two places. The x value of the crossing to the left of the equilibrium position is labeled turning point, minus A, and the crossing to the right of the equilibrium position is labeled turning point, plus A. The region of the graph to the left of the equilibrium position is labeled with a red arrow pointing to the right and the equation F equals minus the derivative of U with respect to. The region of the graph to the right of the equilibrium position is labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x.\" width=\"620\" height=\"434\" \/> <strong>Figure 15.16<\/strong> The Lennard-Jones potential energy function for a system of two neutral atoms. If the energy is below some maximum energy, the system oscillates near the equilibrium position between the two turning points.[\/caption]\r\n\r\n<\/div>\r\n<p id=\"fs-id1167133722753\">From the graph, you can see that there is a potential energy well, which has some similarities to the potential energy well of the potential energy function of the simple harmonic oscillator discussed in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_SHMEnrgPos\">(Figure)<\/a>. The Lennard-Jones potential has a stable equilibrium point where the potential energy is minimum and the force on either side of the equilibrium point points toward equilibrium point. Note that unlike the simple harmonic oscillator, the potential well of the Lennard-Jones potential is not symmetric. This is due to the fact that the force between the atoms is not a Hooke\u2019s law force and is not linear. The atoms can still oscillate around the equilibrium position $$ {x}_{\\text{min}} $$ because when $$ x&lt;{x}_{\\text{min}}$$, the force is positive; when $$ x&gt;{x}_{\\text{min}}$$, the force is negative. Notice that as <em>x<\/em> approaches zero, the slope is quite steep and negative, which means that the force is large and positive. This suggests that it takes a large force to try to push the atoms close together. As <em>x<\/em> becomes increasingly large, the slope becomes less steep and the force is smaller and negative. This suggests that if given a large enough energy, the atoms can be separated.<\/p>\r\n<p id=\"fs-id1167133773522\">If you are interested in this interaction, find the force between the molecules by taking the derivative of the potential energy function. You will see immediately that the force does not resemble a Hooke\u2019s law force $$ (F=\\text{\u2212}kx)$$, but if you are familiar with the binomial theorem:<\/p>\r\n\r\n<div id=\"fs-id1167132257129\" class=\"unnumbered\">$${(1+x)}^{n}=1+nx+\\frac{n(n-1)}{2!}{x}^{2}+\\frac{n(n-1)(n-2)}{3!}{x}^{3}+\\cdots ,$$<\/div>\r\n<p id=\"fs-id1167133541892\">the force can be approximated by a Hooke\u2019s law force.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1167133485699\" class=\"bc-section section\">\r\n<h3>Velocity and Energy Conservation<\/h3>\r\n<p id=\"fs-id1167132608728\">Getting back to the system of a block and a spring in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_EnergyStSp\">(Figure)<\/a>, once the block is released from rest, it begins to move in the negative direction toward the equilibrium position. The potential energy decreases and the magnitude of the velocity and the kinetic energy increase. At time $$ t=T\\text{\/}4$$, the block reaches the equilibrium position $$ x=0.00\\,\\text{m,} $$ where the force on the block and the potential energy are zero. At the equilibrium position, the block reaches a negative velocity with a magnitude equal to the maximum velocity $$ v=\\text{\u2212}A\\omega $$. The kinetic energy is maximum and equal to $$ K=\\frac{1}{2}m{v}^{2}=\\frac{1}{2}m{A}^{2}{\\omega }^{2}=\\frac{1}{2}k{A}^{2}. $$ At this point, the force on the block is zero, but momentum carries the block, and it continues in the negative direction toward $$ x=\\text{\u2212}A$$. As the block continues to move, the force on it acts in the positive direction and the magnitude of the velocity and kinetic energy decrease. The potential energy increases as the spring compresses. At time $$ t=T\\text{\/}2$$, the block reaches $$ x=\\text{\u2212}A$$. Here the velocity and kinetic energy are equal to zero. The force on the block is $$ F=+kA $$ and the potential energy stored in the spring is $$ U=\\frac{1}{2}k{A}^{2}$$. During the oscillations, the total energy is constant and equal to the sum of the potential energy and the kinetic energy of the system,<\/p>\r\n\r\n<div id=\"fs-id1167132544676\" class=\"equation-callout\">\r\n<div id=\"fs-id1167132740739\">$${E}_{\\text{Total}}=\\frac{1}{2}k{x}^{2}+\\frac{1}{2}m{v}^{2}=\\frac{1}{2}k{A}^{2}.$$<\/div>\r\n<\/div>\r\n<p id=\"fs-id1167132629162\">The equation for the energy associated with SHM can be solved to find the magnitude of the velocity at any position:<\/p>\r\n\r\n<div id=\"fs-id1167132518695\" class=\"equation-callout\">\r\n<div id=\"fs-id1167133425180\">$$|v|=\\sqrt{\\frac{k}{m}({A}^{2}-{x}^{2})}.$$<\/div>\r\n<\/div>\r\n<p id=\"fs-id1167132512570\">The energy in a simple harmonic oscillator is proportional to the square of the amplitude. When considering many forms of oscillations, you will find the energy proportional to the amplitude squared.<\/p>\r\n\r\n<div id=\"fs-id1167128986704\" class=\"textbox exercises check-understanding\">\r\n<h3>Check Your Understanding<\/h3><div id=\"fs-id1167132508964\" class=\"problem textbox\">\r\n<div id=\"fs-id1167133533351\">\r\n\r\n<p id=\"fs-id1167132439874\">Why would it hurt more if you snapped your hand with a ruler than with a loose spring, even if the displacement of each system is equal?<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1167133769676\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1167133769676\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1167133769676\"]\r\n<p id=\"fs-id1167132688907\">The ruler is a stiffer system, which carries greater force for the same amount of displacement. The ruler snaps your hand with greater force, which hurts more.<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167132595332\" class=\"textbox exercises check-understanding\">\r\n<h3>Check Your Understanding<\/h3><div id=\"fs-id1167132713462\" class=\"problem textbox\">\r\n<div id=\"fs-id1167133611581\">\r\n\r\n<p id=\"fs-id1167129102812\">Identify one way you could decrease the maximum velocity of a simple harmonic oscillator.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1167132415438\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1167132415438\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1167132415438\"]\r\n<p id=\"fs-id1167132504949\">You could increase the mass of the object that is oscillating. Other options would be to reduce the amplitude, or use a less stiff spring.<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167132267589\" class=\"textbox key-takeaways\">\r\n<h3>Summary<\/h3>\r\n<ul id=\"fs-id1167132559530\">\r\n \t<li>The simplest type of oscillations are related to systems that can be described by Hooke\u2019s law, <em>F<\/em> = \u2212<em>kx<\/em>, where <em>F<\/em> is the restoring force, <em>x<\/em> is the displacement from equilibrium or deformation, and <em>k<\/em> is the force constant of the system.<\/li>\r\n \t<li>Elastic potential energy <em>U<\/em> stored in the deformation of a system that can be described by Hooke\u2019s law is given by$$U=\\frac{1}{2}k{x}^{2}.$$<\/li>\r\n \t<li>Energy in the simple harmonic oscillator is shared between elastic potential energy and kinetic energy, with the total being constant:\r\n<div id=\"fs-id1167132687431\" class=\"unnumbered\">$${E}_{\\text{Total}}=\\frac{1}{2}m{v}^{2}+\\frac{1}{2}k{x}^{2}=\\frac{1}{2}k{A}^{2}=\\text{constant.}$$<\/div><\/li>\r\n \t<li>The magnitude of the velocity as a function of position for the simple harmonic oscillator can be found by using\r\n<div id=\"fs-id1167132586927\" class=\"unnumbered\">$$|v|=\\sqrt{\\frac{k}{m}({A}^{2}-{x}^{2})}.$$<\/div><\/li>\r\n<\/ul>\r\n<\/div>\r\n<div id=\"fs-id1167132464856\" class=\"review-conceptual-questions\">\r\n<h3>Conceptual Questions<\/h3>\r\n<div id=\"fs-id1167132261589\" class=\"problem textbox\">\r\n<div id=\"fs-id1167133567260\">\r\n<p id=\"fs-id1167132473395\">Describe a system in which elastic potential energy is stored.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1167132716789\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1167132716789\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1167132716789\"]\r\n<p id=\"fs-id1167133701484\">In a car, elastic potential energy is stored when the shock is extended or compressed. In some running shoes elastic potential energy is stored in the compression of the material of the soles of the running shoes. In pole vaulting, elastic potential energy is stored in the bending of the pole.<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167132594256\" class=\"problem textbox\">\r\n<div id=\"fs-id1167133524051\">\r\n<p id=\"fs-id1167132576046\">Explain in terms of energy how dissipative forces such as friction reduce the amplitude of a harmonic oscillator. Also explain how a driving mechanism can compensate. (A pendulum clock is such a system.)<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167133539272\" class=\"problem textbox\">\r\n<div id=\"fs-id1167133524447\">\r\n<p id=\"fs-id1167133858186\">The temperature of the atmosphere oscillates from a maximum near noontime and a minimum near sunrise. Would you consider the atmosphere to be in stable or unstable equilibrium?<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1167133730209\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1167133730209\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1167133730209\"]\r\n<p id=\"fs-id1167132575823\">The overall system is stable. There may be times when the stability is interrupted by a storm, but the driving force provided by the sun bring the atmosphere back into a stable pattern.<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167133560636\" class=\"review-problems textbox exercises\">\r\n<h3>Problems<\/h3>\r\n<div id=\"fs-id1167132616356\" class=\"problem textbox\">\r\n<div id=\"fs-id1167132309629\">\r\n<p id=\"fs-id1167132697465\">Fish are hung on a spring scale to determine their mass. (a) What is the force constant of the spring in such a scale if it the spring stretches 8.00 cm for a 10.0 kg load? (b) What is the mass of a fish that stretches the spring 5.50 cm? (c) How far apart are the half-kilogram marks on the scale?<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167132246992\" class=\"problem textbox\">\r\n<div id=\"fs-id1167132214760\">\r\n<p id=\"fs-id1167132502972\">It is weigh-in time for the local under-85-kg rugby team. The bathroom scale used to assess eligibility can be described by Hooke\u2019s law and is depressed 0.75 cm by its maximum load of 120 kg. (a) What is the spring\u2019s effective force constant? (b) A player stands on the scales and depresses it by 0.48 cm. Is he eligible to play on this under-85-kg team?<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1167132464582\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1167132464582\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1167132464582\"]\r\n<p id=\"fs-id1167132267972\">a. $$ 1.57\\,\u00d7\\,{10}^{5}\\,\\text{N\/m}$$; b. 77 kg, yes, he is eligible to play<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167132528557\" class=\"problem textbox\">\r\n<div id=\"fs-id1167133519762\">\r\n<p id=\"fs-id1167132267893\">One type of BB gun uses a spring-driven plunger to blow the BB from its barrel. (a) Calculate the force constant of its plunger\u2019s spring if you must compress it 0.150 m to drive the 0.0500-kg plunger to a top speed of 20.0 m\/s. (b) What force must be exerted to compress the spring?<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167128974985\" class=\"problem textbox\">\r\n<div id=\"fs-id1167133611925\">\r\n<p id=\"fs-id1167132535186\">When an 80.0-kg man stands on a pogo stick, the spring is compressed 0.120 m. (a) What is the force constant of the spring? (b) Will the spring be compressed more when he hops down the road?<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1167133614953\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1167133614953\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1167133614953\"]\r\n<p id=\"fs-id1167133703539\">a. $$ 6.53\\,\u00d7\\,{10}^{3}\\,\\text{N\/m}$$; b. yes, when the man is at his lowest point in his hopping the spring will be compressed the most<\/p>\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167132299813\" class=\"problem textbox\">\r\n<div id=\"fs-id1167132361255\">\r\n<p id=\"fs-id1167133578385\">A spring has a length of 0.200 m when a 0.300-kg mass hangs from it, and a length of 0.750 m when a 1.95-kg mass hangs from it. (a) What is the force constant of the spring? (b) What is the unloaded length of the spring?<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"fs-id1167128914764\" class=\"problem textbox\">\r\n<div id=\"fs-id1167129092420\">\r\n<p id=\"fs-id1167129012774\">The length of nylon rope from which a mountain climber is suspended has an effective force constant of $$ 1.40\\,\u00d7\\,{10}^{4}\\,\\text{N\/m}$$. (a) What is the frequency at which he bounces, given his mass plus and the mass of his equipment are 90.0 kg? (b) How much would this rope stretch to break the climber\u2019s fall if he free-falls 2.00 m before the rope runs out of slack? (<em>Hint:<\/em> Use conservation of energy.) (c) Repeat both parts of this problem in the situation where twice this length of nylon rope is used.<\/p>\r\n\r\n<\/div>\r\n<div id=\"fs-id1167132454826\" class=\"solution\">\r\n\r\n[reveal-answer q=\"fs-id1167132454826\"]Show Solution[\/reveal-answer]\r\n\r\n[hidden-answer a=\"fs-id1167132454826\"]\r\n<p id=\"fs-id1167132718033\">a. 1.99 Hz; b. 50.2 cm; c. 0.710 m<\/p>\r\n[\/hidden-answer]\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-id1167132242610\">\r\n \t<dt>elastic potential energy<\/dt>\r\n \t<dd id=\"fs-id1167128956760\">potential energy stored as a result of deformation of an elastic object, such as the stretching of a spring<\/dd>\r\n<\/dl>\r\n<dl id=\"fs-id1167133361012\">\r\n \t<dt>restoring force<\/dt>\r\n \t<dd id=\"fs-id1167132222880\">force acting in opposition to the force caused by a deformation<\/dd>\r\n<\/dl>\r\n<dl id=\"fs-id1167132455155\">\r\n \t<dt>stable equilibrium point<\/dt>\r\n \t<dd id=\"fs-id1167128956744\">point where the net force on a system is zero, but a small displacement of the mass will cause a restoring force that points toward the equilibrium point<\/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>Describe the energy conservation of the system of a mass and a spring<\/li>\n<li>Explain the concepts of stable and unstable equilibrium points<\/li>\n<\/ul>\n<\/div>\n<p id=\"fs-id1167132625825\">To produce a deformation in an object, we must do work. That is, whether you pluck a guitar string or compress a car\u2019s shock absorber, a force must be exerted through a distance. If the only result is deformation, and no work goes into thermal, sound, or kinetic energy, then all the work is initially stored in the deformed object as some form of potential energy.<\/p>\n<p id=\"fs-id1167132616891\">Consider the example of a block attached to a spring on a frictionless table, oscillating in SHM. The force of the spring is a conservative force (which you studied in the chapter on potential energy and conservation of energy), and we can define a potential energy for it. This potential energy is the energy stored in the spring when the spring is extended or compressed. In this case, the block oscillates in one dimension with the force of the spring acting parallel to the motion:<\/p>\n<div id=\"fs-id1167132504113\" class=\"unnumbered\">$$W=\\underset{{x}_{i}}{\\overset{{x}_{f}}{\\int }}{F}_{x}dx=\\underset{{x}_{i}}{\\overset{{x}_{f}}{\\int }}\\text{\u2212}kxdx={[-\\frac{1}{2}k{x}^{2}]}_{{x}_{i}}^{{x}_{f}}=\\text{\u2212}[\\frac{1}{2}k{x}_{f}^{2}-\\frac{1}{2}k{x}_{i}^{2}]=\\text{\u2212}[{U}_{f}-{U}_{i}]=\\text{\u2212}\\text{\u0394}U.$$<\/div>\n<p id=\"fs-id1167133739608\">When considering the energy stored in a spring, the equilibrium position, marked as $$ {x}_{i}=0.00\\,\\text{m,} $$ is the position at which the energy stored in the spring is equal to zero. When the spring is stretched or compressed a distance <em>x<\/em>, the potential energy stored in the spring is<\/p>\n<div id=\"fs-id1167128853370\" class=\"unnumbered\">$$U=\\frac{1}{2}k{x}^{2}.$$<\/div>\n<div id=\"fs-id1167133525430\" class=\"bc-section section\">\n<h3>Energy and the Simple Harmonic Oscillator<\/h3>\n<p id=\"fs-id1167132338789\">To study the energy of a simple harmonic oscillator, we need to consider all the forms of energy. Consider the example of a block attached to a spring, placed on a frictionless surface, oscillating in SHM. The potential energy stored in the deformation of the spring is<\/p>\n<div id=\"fs-id1167133525426\" class=\"unnumbered\">$$U=\\frac{1}{2}k{x}^{2}.$$<\/div>\n<p id=\"fs-id1167132382791\">In a <strong><span class=\"no-emphasis\">simple harmonic oscillator<\/span><\/strong>, the energy oscillates between kinetic energy of the mass $$ K=\\frac{1}{2}m{v}^{2} $$ and potential energy $$ U=\\frac{1}{2}k{x}^{2} $$ stored in the spring. In the SHM of the mass and spring system, there are no dissipative forces, so the total energy is the sum of the potential energy and kinetic energy. In this section, we consider the conservation of energy of the system. The concepts examined are valid for all simple harmonic oscillators, including those where the gravitational force plays a role.<\/p>\n<p id=\"fs-id1167133638018\">Consider <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_EnergyStSp\">(Figure)<\/a>, which shows an oscillating block attached to a spring. In the case of undamped SHM, the energy oscillates back and forth between kinetic and potential, going completely from one form of energy to the other as the system oscillates. So for the simple example of an object on a frictionless surface attached to a spring, the motion starts with all of the energy stored in the spring as <strong>elastic potential energy<\/strong>. As the object starts to move, the elastic potential energy is converted into kinetic energy, becoming entirely kinetic energy at the equilibrium position. The energy is then converted back into elastic potential energy by the spring as it is stretched or compressed. The velocity becomes zero when the kinetic energy is completely converted, and this cycle then repeats. Understanding the conservation of energy in these cycles will provide extra insight here and in later applications of SHM, such as alternating circuits.<\/p>\n<div id=\"CNX_UPhysics_15_02_EnergyStSp\" class=\"wp-caption aligncenter\">\n<div style=\"width: 746px\" 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\/31200810\/CNX_UPhysics_15_02_EnergyStSp.jpg\" alt=\"The motion and energy of a mass attached to a horizontal spring, spring constant k, at various points in its motion. In figure (a) the mass is displaced to a position x = A to the right of x =0 and released from rest (v=0.) The spring is stretched. The force on the mass is to the left. The diagram is labeled with one half k A squared. (b) The mass is at x = 0 and moving in the negative x-direction with velocity \u2013 v sub max. The spring is relaxed. The Force on the mass is zero. The diagram is labeled with one half m quantity v sub max squared. (c) The mass is at minus A, to the left of x = 0 and is at rest (v =0.) The spring is compressed. The force F is to the right. The diagram is labeled with one half k quantity minus A squared. (d) The mass is at x = 0 and moving in the positive x-direction with velocity plus v sub max. The spring is relaxed. The Force on the mass is zero. The diagram is labeled with one half m v sub max squared. (e) the mass is again at x = A to the right of x =0. The diagram is labeled with one half k A squared.\" width=\"736\" height=\"538\" \/><\/p>\n<p class=\"wp-caption-text\"><strong>Figure 15.10<\/strong> The transformation of energy in SHM for an object attached to a spring on a frictionless surface. (a) When the mass is at the position $$ x=+A$$, all the energy is stored as potential energy in the spring $$ U=\\frac{1}{2}k{A}^{2}$$. The kinetic energy is equal to zero because the velocity of the mass is zero. (b) As the mass moves toward $$ x=\\text{\u2212}A$$, the mass crosses the position $$ x=0$$. At this point, the spring is neither extended nor compressed, so the potential energy stored in the spring is zero. At $$ x=0$$, the total energy is all kinetic energy where $$ K=\\frac{1}{2}m{(\\text{\u2212}{v}_{\\text{max}})}^{2}$$. (c) The mass continues to move until it reaches $$ x=\\text{\u2212}A $$ where the mass stops and starts moving toward $$ x=+A$$. At the position $$ x=\\text{\u2212}A$$, the total energy is stored as potential energy in the compressed $$ U=\\frac{1}{2}k{(\\text{\u2212}A)}^{2} $$ and the kinetic energy is zero. (d) As the mass passes through the position $$ x=0$$, the kinetic energy is $$ K=\\frac{1}{2}m{v}_{\\text{max}}^{2} $$ and the potential energy stored in the spring is zero. (e) The mass returns to the position $$ x=+A$$, where $$ K=0 $$ and $$ U=\\frac{1}{2}k{A}^{2}$$.<\/p>\n<\/div>\n<\/div>\n<p id=\"fs-id1167128976397\">Consider <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_EnergyStSp\">(Figure)<\/a>, which shows the energy at specific points on the periodic motion. While staying constant, the energy oscillates between the kinetic energy of the block and the potential energy stored in the spring:<\/p>\n<div id=\"fs-id1167133745266\" class=\"unnumbered\">$${E}_{\\text{Total}}=U+K=\\frac{1}{2}k{x}^{2}+\\frac{1}{2}m{v}^{2}.$$<\/div>\n<p id=\"fs-id1167133567247\">The motion of the block on a spring in SHM is defined by the position $$ x(t)=A\\text{cos}(\\omega t+\\varphi ) $$ with a velocity of $$ v(t)=\\text{\u2212}A\\omega \\text{sin}(\\omega t+\\varphi )$$. Using these equations, the trigonometric identity $$ {\\text{cos}}^{2}\\theta +{\\text{sin}}^{2}\\theta =1 $$ and $$ \\omega =\\sqrt{\\frac{k}{m}}$$, we can find the total energy of the system:<\/p>\n<div id=\"fs-id1167132740555\" class=\"unnumbered\">$$\\begin{array}{cc}\\hfill {E}_{\\text{Total}}&amp; =\\frac{1}{2}k{A}^{2}{\\text{cos}}^{2}(\\omega t+\\varphi )+\\frac{1}{2}m{A}^{2}{\\omega }^{2}{\\text{sin}}^{2}(\\omega t+\\varphi )\\hfill \\\\ &amp; =\\frac{1}{2}k{A}^{2}{\\text{cos}}^{2}(\\omega t+\\varphi )+\\frac{1}{2}m{A}^{2}(\\frac{k}{m}){\\text{sin}}^{2}(\\omega t+\\varphi )\\hfill \\\\ &amp; =\\frac{1}{2}k{A}^{2}{\\text{cos}}^{2}(\\omega t+\\varphi )+\\frac{1}{2}k{A}^{2}{\\text{sin}}^{2}(\\omega t+\\varphi )\\hfill \\\\ &amp; =\\frac{1}{2}k{A}^{2}({\\text{cos}}^{2}(\\omega t+\\varphi )+{\\text{sin}}^{2}(\\omega t+\\varphi ))\\hfill \\\\ &amp; =\\frac{1}{2}k{A}^{2}.\\hfill \\end{array}$$<\/div>\n<p id=\"fs-id1167133529862\">The total energy of the system of a block and a spring is equal to the sum of the potential energy stored in the spring plus the kinetic energy of the block and is proportional to the square of the amplitude $$ {E}_{\\text{Total}}=(1\\text{\/}2)k{A}^{2}. $$ The total energy of the system is constant.<\/p>\n<p id=\"fs-id1167132338512\">A closer look at the energy of the system shows that the kinetic energy oscillates like a sine-squared function, while the potential energy oscillates like a cosine-squared function. However, the total energy for the system is constant and is proportional to the amplitude squared. <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_EnerTotSpr\">(Figure)<\/a> shows a plot of the potential, kinetic, and total energies of the block and spring system as a function of time. Also plotted are the position and velocity as a function of time. Before time $$ t=0.0\\,\\text{s,} $$ the block is attached to the spring and placed at the equilibrium position. Work is done on the block by applying an external force, pulling it out to a position of $$ x=+A$$. The system now has potential energy stored in the spring. At time $$ t=0.00\\,\\text{s,} $$ the position of the block is equal to the amplitude, the potential energy stored in the spring is equal to $$ U=\\frac{1}{2}k{A}^{2}$$, and the force on the block is maximum and points in the negative <em>x<\/em>-direction $$ ({F}_{S}=\\text{\u2212}kA)$$. The velocity and kinetic energy of the block are zero at time $$ t=0.00\\,\\text{s}\\text{.} $$ At time $$ t=0.00\\,\\text{s,} $$ the block is released from rest.<\/p>\n<div id=\"CNX_UPhysics_15_02_EnerTotSpr\" class=\"wp-caption aligncenter\">\n<div style=\"width: 940px\" 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\/31200814\/CNX_UPhysics_15_02_EnerTotSpr.jpg\" alt=\"Graphs of the energy, position, and velocity as functions of time for a mass on a spring. On the left is the graph of energy in Joules (J) versus time in seconds. The vertical axis range is zero to one half k A squared. The horizontal axis range is zero to T. Three curves are shown. The total energy E sub total is shown as a green line. The total energy is a constant at a value of one half k A squared. The kinetic energy K equals one half m v squared is shown as a red curve. K starts at zero energy at t=0, and rises to a maximum value of one half k A squared at time 1\/4 T, then decreases to zero at 1\/2 T, rises to one half k A squared at 3\/4 T, and is zero again at T. Potential energy U equals one half k x squared is shown as a blue curve. U starts at maximum energy of one half k A squared at t=0, decreases to zero at 1\/4 T, rises to one half k A squared at 1\/2 T, is zero again at 3\/4 T and is at the maximum of one half k A squared again at t=T. On the right is a graph of position versus time above a graph of velocity versus time. The position graph has x in meters, ranging from \u2013A to +A, versus time in seconds. The position is at +A and decreasing at t=0, reaches a minimum of \u2013A, then rises to +A. The velocity graph has v in m\/s, ranging from minus v sub max to plus v sub max, versus time in seconds. The velocity is zero and decreasing at t=0, and reaches a minimum of minus v sub max at the same time that the position graph is zero. The velocity is zero again when the position is at x=-A, rises to plus v sub max when the position is zero, and v=0 at the end of the graph, where the position Is again maximum.\" width=\"930\" height=\"434\" \/><\/p>\n<p class=\"wp-caption-text\"><strong>Figure 15.12<\/strong> Graph of the kinetic energy, potential energy, and total energy of a block oscillating on a spring in SHM. Also shown are the graphs of position versus time and velocity versus time. The total energy remains constant, but the energy oscillates between kinetic energy and potential energy. When the kinetic energy is maximum, the potential energy is zero. This occurs when the velocity is maximum and the mass is at the equilibrium position. The potential energy is maximum when the speed is zero. The total energy is the sum of the kinetic energy plus the potential energy and it is constant.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1167132427370\" class=\"bc-section section\">\n<h3>Oscillations About an Equilibrium Position<\/h3>\n<p id=\"fs-id1167128851134\">We have just considered the energy of SHM as a function of time. Another interesting view of the simple harmonic oscillator is to consider the energy as a function of position. <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_SHMEnrgPos\">(Figure)<\/a> shows a graph of the energy versus position of a system undergoing SHM.<\/p>\n<div id=\"CNX_UPhysics_15_02_SHMEnrgPos\" class=\"wp-caption aligncenter\">\n<div style=\"width: 576px\" 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\/31200818\/CNX_UPhysics_15_02_SHMEnrgPos.jpg\" alt=\"Graph of energy E in Joules on the vertical axis versus position x in meters on the horizontal axis. The horizontal axis had x=0 labeled as the equilibrium position with F=0. Positions x=-A and x=+A are labeled as turning points. A concave down parabola in red, labeled as K, has its maximum value of E=E total at x=0 and is zero at x=-A and x=+A. A horizontal green line at a constant E value of E total is labeled as E total. A concave up parabola in blue, labeled as U, intersects the green line with a value of E=E total at x=-A and x=+A and is zero at x=0. The region of the graph to the left of x=0 is labeled with a red arrow pointing to the right and the equation F equals minus the derivative of U with respect to x. The region of the graph to the right of x=0 is labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x.\" width=\"566\" height=\"427\" \/><\/p>\n<p class=\"wp-caption-text\"><strong>Figure 15.13<\/strong> A graph of the kinetic energy (red), potential energy (blue), and total energy (green) of a simple harmonic oscillator. The force is equal to $$ F=-\\frac{dU}{dx}$$. The equilibrium position is shown as a black dot and is the point where the force is equal to zero. The force is positive when $$ x&lt;0$$, negative when $$ x&gt;0$$, and equal to zero when $$ x=0$$.<\/p>\n<\/div>\n<\/div>\n<p id=\"fs-id1167132495725\">The potential energy curve in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_SHMEnrgPos\">(Figure)<\/a> resembles a bowl. When a marble is placed in a bowl, it settles to the equilibrium position at the lowest point of the bowl $$ (x=0)$$. This happens because a <strong>restoring force<\/strong> points toward the equilibrium point. This equilibrium point is sometimes referred to as a <em>fixed point<\/em>. When the marble is disturbed to a different position $$ (x=+A)$$, the marble oscillates around the equilibrium position. Looking back at the graph of potential energy, the force can be found by looking at the slope of the potential energy graph $$ (F=-\\frac{dU}{dx})$$. Since the force on either side of the fixed point points back toward the equilibrium point, the equilibrium point is called a <strong>stable equilibrium point<\/strong>. The points $$ x=A $$ and $$ x=\\text{\u2212}A $$ are called the <span class=\"no-emphasis\">turning points<\/span>. (See <a class=\"target-chapter\" href=\"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/chapter\/introduction-8\/\">Potential Energy and Conservation of Energy<\/a>.)<\/p>\n<p id=\"fs-id1167132239306\"><span class=\"no-emphasis\">Stability<\/span> is an important concept. If an equilibrium point is stable, a slight disturbance of an object that is initially at the stable equilibrium point will cause the object to oscillate around that point. The stable equilibrium point occurs because the force on either side is directed toward it. For an unstable equilibrium point, if the object is disturbed slightly, it does not return to the equilibrium point.<\/p>\n<p id=\"fs-id1167132722356\">Consider the marble in the bowl example. If the bowl is right-side up, the marble, if disturbed slightly, will oscillate around the stable equilibrium point. If the bowl is turned upside down, the marble can be balanced on the top, at the equilibrium point where the net force is zero. However, if the marble is disturbed slightly, it will not return to the equilibrium point, but will instead roll off the bowl. The reason is that the force on either side of the equilibrium point is directed away from that point. This point is an unstable equilibrium point.<\/p>\n<p id=\"fs-id1167133655285\"><a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_BowlFixPT\">(Figure)<\/a> shows three conditions. The first is a stable equilibrium point (a), the second is an unstable equilibrium point (b), and the last is also an unstable equilibrium point (c), because the force on only one side points toward the equilibrium point.<\/p>\n<div id=\"CNX_UPhysics_15_02_BowlFixPT\" class=\"wp-caption aligncenter\">\n<div style=\"width: 833px\" 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\/31200821\/CNX_UPhysics_15_02_BowlFixPT.jpg\" alt=\"Three illustrations of a ball on a surface. In figure a, stable equilibrium point, the ball is inside a concave-up surface, at the bottom. A filled circle under the surface, below the ball, has two horizontal arrows labeled as F pointing toward it from either side. Gray arrows tangent to the surface are shown inside the surface, pointing down the slope, toward the ball\u2019s position. In figure b, unstable equilibrium point, the ball is on top of a concave-down surface, at the top. An empty circle under the surface, below the ball, has two horizontal arrows labeled as F pointing away it from either side. Gray arrows tangent to the surface are shown inside the surface, pointing down the slope, away from the ball\u2019s position. In figure c, unstable equilibrium point, the ball is on the inflection point of a surface. A half-filled circle under the surface, below the ball, has two horizontal arrows labeled as F, one on either side of the circle, both pointing to the left. Gray arrows tangent to the surface are shown inside the surface, pointing down the slope, one toward the ball and the other away from it.\" width=\"823\" height=\"249\" \/><\/p>\n<p class=\"wp-caption-text\"><strong>Figure 15.14<\/strong> Examples of equilibrium points. (a) Stable equilibrium point; (b) unstable equilibrium point; (c) unstable equilibrium point (sometimes referred to as a half-stable equilibrium point).<\/p>\n<\/div>\n<\/div>\n<p id=\"fs-id1167133353606\">The process of determining whether an equilibrium point is stable or unstable can be formalized. Consider the potential energy curves shown in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_BowlFixed\">(Figure)<\/a>. The force can be found by analyzing the slope of the graph. The force is $$ F=-\\frac{dU}{dx}. $$ In (a), the fixed point is at $$ x=0.00\\,\\text{m}\\text{.} $$ When $$ x&lt;0.00\\,\\text{m,} $$ the force is positive. When $$ x&gt;0.00\\,\\text{m,} $$ the force is negative. This is a stable point. In (b), the fixed point is at $$ x=0.00\\,\\text{m}\\text{.} $$ When $$ x&lt;0.00\\,\\text{m,} $$ the force is negative. When $$ x&gt;0.00\\,\\text{m,} $$ the force is also negative. This is an unstable point.<\/p>\n<div id=\"CNX_UPhysics_15_02_BowlFixed\" class=\"wp-caption aligncenter\">\n<div style=\"width: 900px\" 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\/31200825\/CNX_UPhysics_15_02_BowlFixed.jpg\" alt=\"Two graphs of U in Joules on the vertical axis as a function of x in meters on the horizontal axis. In figure a, U of x is an upward opening parabola whose vertex is marked with a black dot and is at x=0, U=0. The region of the graph to the left of x=0 is labeled with a red arrow pointing to the right and the equation F equals minus the derivative of U with respect to x is greater than zero. The region of the graph to the right of x=0 is labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x is less than zero. Below the graph is a copy of the dot between copies of the red arrows and the force relations, F equals minus the derivative of U with respect to x is greater than zero on the left and F equals minus the derivative of U with respect to x is less than zero on the right. In figure b, U of x is an increasing function with an inflection point that is marked with a half filled circle at x=0, U=0. The region of the graph to the left of x=0 is labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x is less than zero. The region of the graph to the right of x=0 is also labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x is less than zero. Below the graph is a copy of the circle between copies of the red arrows, both of which point to the left, and the force relations, F equals minus the derivative of U with respect to x is less than zero on the left and F equals minus the derivative of U with respect to x is less than zero on the right.\" width=\"890\" height=\"450\" \/><\/p>\n<p class=\"wp-caption-text\"><strong>Figure 15.15<\/strong> Two examples of a potential energy function. The force at a position is equal to the negative of the slope of the graph at that position. (a) A potential energy function with a stable equilibrium point. (b) A potential energy function with an unstable equilibrium point. This point is sometimes called half-stable because the force on one side points toward the fixed point.<\/p>\n<\/div>\n<\/div>\n<p id=\"fs-id1167129102553\">A practical application of the concept of stable equilibrium points is the force between two neutral atoms in a molecule. If two molecules are in close proximity, separated by a few atomic diameters, they can experience an attractive force. If the molecules move close enough so that the electron shells of the other electrons overlap, the force between the molecules becomes repulsive. The attractive force between the two atoms may cause the atoms to form a molecule. The force between the two molecules is not a linear force and cannot be modeled simply as two masses separated by a spring, but the atoms of the molecule can oscillate around an equilibrium point when displaced a small amount from the equilibrium position. The atoms oscillate due the attractive force and repulsive force between the two atoms.<\/p>\n<p id=\"fs-id1167132259694\">Consider one example of the interaction between two atoms known as the van Der Waals interaction. It is beyond the scope of this chapter to discuss in depth the interactions of the two atoms, but the oscillations of the atoms can be examined by considering one example of a model of the potential energy of the system. One suggestion to model the potential energy of this molecule is with the <span class=\"no-emphasis\">Lennard-Jones 6-12 potential<\/span>:<\/p>\n<div id=\"fs-id1167132305258\" class=\"unnumbered\">$$U(x)=4\\epsilon [{(\\frac{\\sigma }{x})}^{12}-{(\\frac{\\sigma }{x})}^{6}].$$<\/div>\n<p id=\"fs-id1167133773486\">A graph of this function is shown in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_LennaJones\">(Figure)<\/a>. The two parameters $$ \\epsilon  $$ and $$ \\sigma  $$ are found experimentally.<\/p>\n<div id=\"CNX_UPhysics_15_02_LennaJones\" class=\"wp-caption aligncenter\">\n<div style=\"width: 630px\" 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\/31200829\/CNX_UPhysics_15_02_LennaJones.jpg\" alt=\"An annotated graph of E in Joules on the vertical axis as a function of x in meters on the horizontal axis. The Lennard-Jones potential, U, is shown as a blue curve that is large and positive at small x. It decreases rapidly, becomes negative, and continues to decrease until it reaches a minimum value at a position marked as the equilibrium position, F=0, then gradually increases and approaches E=0 asymptotically but remains negative. A horizontal green line of constant, negative value is labeled as E total. The green and blue E total and U curves cross at two places. The x value of the crossing to the left of the equilibrium position is labeled turning point, minus A, and the crossing to the right of the equilibrium position is labeled turning point, plus A. The region of the graph to the left of the equilibrium position is labeled with a red arrow pointing to the right and the equation F equals minus the derivative of U with respect to. The region of the graph to the right of the equilibrium position is labeled with a red arrow pointing to the left and the equation F equals minus the derivative of U with respect to x.\" width=\"620\" height=\"434\" \/><\/p>\n<p class=\"wp-caption-text\"><strong>Figure 15.16<\/strong> The Lennard-Jones potential energy function for a system of two neutral atoms. If the energy is below some maximum energy, the system oscillates near the equilibrium position between the two turning points.<\/p>\n<\/div>\n<\/div>\n<p id=\"fs-id1167133722753\">From the graph, you can see that there is a potential energy well, which has some similarities to the potential energy well of the potential energy function of the simple harmonic oscillator discussed in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_SHMEnrgPos\">(Figure)<\/a>. The Lennard-Jones potential has a stable equilibrium point where the potential energy is minimum and the force on either side of the equilibrium point points toward equilibrium point. Note that unlike the simple harmonic oscillator, the potential well of the Lennard-Jones potential is not symmetric. This is due to the fact that the force between the atoms is not a Hooke\u2019s law force and is not linear. The atoms can still oscillate around the equilibrium position $$ {x}_{\\text{min}} $$ because when $$ x&lt;{x}_{\\text{min}}$$, the force is positive; when $$ x&gt;{x}_{\\text{min}}$$, the force is negative. Notice that as <em>x<\/em> approaches zero, the slope is quite steep and negative, which means that the force is large and positive. This suggests that it takes a large force to try to push the atoms close together. As <em>x<\/em> becomes increasingly large, the slope becomes less steep and the force is smaller and negative. This suggests that if given a large enough energy, the atoms can be separated.<\/p>\n<p id=\"fs-id1167133773522\">If you are interested in this interaction, find the force between the molecules by taking the derivative of the potential energy function. You will see immediately that the force does not resemble a Hooke\u2019s law force $$ (F=\\text{\u2212}kx)$$, but if you are familiar with the binomial theorem:<\/p>\n<div id=\"fs-id1167132257129\" class=\"unnumbered\">$${(1+x)}^{n}=1+nx+\\frac{n(n-1)}{2!}{x}^{2}+\\frac{n(n-1)(n-2)}{3!}{x}^{3}+\\cdots ,$$<\/div>\n<p id=\"fs-id1167133541892\">the force can be approximated by a Hooke\u2019s law force.<\/p>\n<\/div>\n<div id=\"fs-id1167133485699\" class=\"bc-section section\">\n<h3>Velocity and Energy Conservation<\/h3>\n<p id=\"fs-id1167132608728\">Getting back to the system of a block and a spring in <a class=\"autogenerated-content\" href=\"#CNX_UPhysics_15_02_EnergyStSp\">(Figure)<\/a>, once the block is released from rest, it begins to move in the negative direction toward the equilibrium position. The potential energy decreases and the magnitude of the velocity and the kinetic energy increase. At time $$ t=T\\text{\/}4$$, the block reaches the equilibrium position $$ x=0.00\\,\\text{m,} $$ where the force on the block and the potential energy are zero. At the equilibrium position, the block reaches a negative velocity with a magnitude equal to the maximum velocity $$ v=\\text{\u2212}A\\omega $$. The kinetic energy is maximum and equal to $$ K=\\frac{1}{2}m{v}^{2}=\\frac{1}{2}m{A}^{2}{\\omega }^{2}=\\frac{1}{2}k{A}^{2}. $$ At this point, the force on the block is zero, but momentum carries the block, and it continues in the negative direction toward $$ x=\\text{\u2212}A$$. As the block continues to move, the force on it acts in the positive direction and the magnitude of the velocity and kinetic energy decrease. The potential energy increases as the spring compresses. At time $$ t=T\\text{\/}2$$, the block reaches $$ x=\\text{\u2212}A$$. Here the velocity and kinetic energy are equal to zero. The force on the block is $$ F=+kA $$ and the potential energy stored in the spring is $$ U=\\frac{1}{2}k{A}^{2}$$. During the oscillations, the total energy is constant and equal to the sum of the potential energy and the kinetic energy of the system,<\/p>\n<div id=\"fs-id1167132544676\" class=\"equation-callout\">\n<div id=\"fs-id1167132740739\">$${E}_{\\text{Total}}=\\frac{1}{2}k{x}^{2}+\\frac{1}{2}m{v}^{2}=\\frac{1}{2}k{A}^{2}.$$<\/div>\n<\/div>\n<p id=\"fs-id1167132629162\">The equation for the energy associated with SHM can be solved to find the magnitude of the velocity at any position:<\/p>\n<div id=\"fs-id1167132518695\" class=\"equation-callout\">\n<div id=\"fs-id1167133425180\">$$|v|=\\sqrt{\\frac{k}{m}({A}^{2}-{x}^{2})}.$$<\/div>\n<\/div>\n<p id=\"fs-id1167132512570\">The energy in a simple harmonic oscillator is proportional to the square of the amplitude. When considering many forms of oscillations, you will find the energy proportional to the amplitude squared.<\/p>\n<div id=\"fs-id1167128986704\" class=\"textbox exercises check-understanding\">\n<h3>Check Your Understanding<\/h3>\n<div id=\"fs-id1167132508964\" class=\"problem textbox\">\n<div id=\"fs-id1167133533351\">\n<p id=\"fs-id1167132439874\">Why would it hurt more if you snapped your hand with a ruler than with a loose spring, even if the displacement of each system is equal?<\/p>\n<\/div>\n<div id=\"fs-id1167133769676\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1167133769676\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1167133769676\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1167132688907\">The ruler is a stiffer system, which carries greater force for the same amount of displacement. The ruler snaps your hand with greater force, which hurts more.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1167132595332\" class=\"textbox exercises check-understanding\">\n<h3>Check Your Understanding<\/h3>\n<div id=\"fs-id1167132713462\" class=\"problem textbox\">\n<div id=\"fs-id1167133611581\">\n<p id=\"fs-id1167129102812\">Identify one way you could decrease the maximum velocity of a simple harmonic oscillator.<\/p>\n<\/div>\n<div id=\"fs-id1167132415438\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1167132415438\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1167132415438\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1167132504949\">You could increase the mass of the object that is oscillating. Other options would be to reduce the amplitude, or use a less stiff spring.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1167132267589\" class=\"textbox key-takeaways\">\n<h3>Summary<\/h3>\n<ul id=\"fs-id1167132559530\">\n<li>The simplest type of oscillations are related to systems that can be described by Hooke\u2019s law, <em>F<\/em> = \u2212<em>kx<\/em>, where <em>F<\/em> is the restoring force, <em>x<\/em> is the displacement from equilibrium or deformation, and <em>k<\/em> is the force constant of the system.<\/li>\n<li>Elastic potential energy <em>U<\/em> stored in the deformation of a system that can be described by Hooke\u2019s law is given by$$U=\\frac{1}{2}k{x}^{2}.$$<\/li>\n<li>Energy in the simple harmonic oscillator is shared between elastic potential energy and kinetic energy, with the total being constant:\n<div id=\"fs-id1167132687431\" class=\"unnumbered\">$${E}_{\\text{Total}}=\\frac{1}{2}m{v}^{2}+\\frac{1}{2}k{x}^{2}=\\frac{1}{2}k{A}^{2}=\\text{constant.}$$<\/div>\n<\/li>\n<li>The magnitude of the velocity as a function of position for the simple harmonic oscillator can be found by using\n<div id=\"fs-id1167132586927\" class=\"unnumbered\">$$|v|=\\sqrt{\\frac{k}{m}({A}^{2}-{x}^{2})}.$$<\/div>\n<\/li>\n<\/ul>\n<\/div>\n<div id=\"fs-id1167132464856\" class=\"review-conceptual-questions\">\n<h3>Conceptual Questions<\/h3>\n<div id=\"fs-id1167132261589\" class=\"problem textbox\">\n<div id=\"fs-id1167133567260\">\n<p id=\"fs-id1167132473395\">Describe a system in which elastic potential energy is stored.<\/p>\n<\/div>\n<div id=\"fs-id1167132716789\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1167132716789\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1167132716789\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1167133701484\">In a car, elastic potential energy is stored when the shock is extended or compressed. In some running shoes elastic potential energy is stored in the compression of the material of the soles of the running shoes. In pole vaulting, elastic potential energy is stored in the bending of the pole.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1167132594256\" class=\"problem textbox\">\n<div id=\"fs-id1167133524051\">\n<p id=\"fs-id1167132576046\">Explain in terms of energy how dissipative forces such as friction reduce the amplitude of a harmonic oscillator. Also explain how a driving mechanism can compensate. (A pendulum clock is such a system.)<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1167133539272\" class=\"problem textbox\">\n<div id=\"fs-id1167133524447\">\n<p id=\"fs-id1167133858186\">The temperature of the atmosphere oscillates from a maximum near noontime and a minimum near sunrise. Would you consider the atmosphere to be in stable or unstable equilibrium?<\/p>\n<\/div>\n<div id=\"fs-id1167133730209\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1167133730209\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1167133730209\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1167132575823\">The overall system is stable. There may be times when the stability is interrupted by a storm, but the driving force provided by the sun bring the atmosphere back into a stable pattern.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1167133560636\" class=\"review-problems textbox exercises\">\n<h3>Problems<\/h3>\n<div id=\"fs-id1167132616356\" class=\"problem textbox\">\n<div id=\"fs-id1167132309629\">\n<p id=\"fs-id1167132697465\">Fish are hung on a spring scale to determine their mass. (a) What is the force constant of the spring in such a scale if it the spring stretches 8.00 cm for a 10.0 kg load? (b) What is the mass of a fish that stretches the spring 5.50 cm? (c) How far apart are the half-kilogram marks on the scale?<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1167132246992\" class=\"problem textbox\">\n<div id=\"fs-id1167132214760\">\n<p id=\"fs-id1167132502972\">It is weigh-in time for the local under-85-kg rugby team. The bathroom scale used to assess eligibility can be described by Hooke\u2019s law and is depressed 0.75 cm by its maximum load of 120 kg. (a) What is the spring\u2019s effective force constant? (b) A player stands on the scales and depresses it by 0.48 cm. Is he eligible to play on this under-85-kg team?<\/p>\n<\/div>\n<div id=\"fs-id1167132464582\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1167132464582\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1167132464582\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1167132267972\">a. $$ 1.57\\,\u00d7\\,{10}^{5}\\,\\text{N\/m}$$; b. 77 kg, yes, he is eligible to play<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1167132528557\" class=\"problem textbox\">\n<div id=\"fs-id1167133519762\">\n<p id=\"fs-id1167132267893\">One type of BB gun uses a spring-driven plunger to blow the BB from its barrel. (a) Calculate the force constant of its plunger\u2019s spring if you must compress it 0.150 m to drive the 0.0500-kg plunger to a top speed of 20.0 m\/s. (b) What force must be exerted to compress the spring?<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1167128974985\" class=\"problem textbox\">\n<div id=\"fs-id1167133611925\">\n<p id=\"fs-id1167132535186\">When an 80.0-kg man stands on a pogo stick, the spring is compressed 0.120 m. (a) What is the force constant of the spring? (b) Will the spring be compressed more when he hops down the road?<\/p>\n<\/div>\n<div id=\"fs-id1167133614953\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1167133614953\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1167133614953\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1167133703539\">a. $$ 6.53\\,\u00d7\\,{10}^{3}\\,\\text{N\/m}$$; b. yes, when the man is at his lowest point in his hopping the spring will be compressed the most<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fs-id1167132299813\" class=\"problem textbox\">\n<div id=\"fs-id1167132361255\">\n<p id=\"fs-id1167133578385\">A spring has a length of 0.200 m when a 0.300-kg mass hangs from it, and a length of 0.750 m when a 1.95-kg mass hangs from it. (a) What is the force constant of the spring? (b) What is the unloaded length of the spring?<\/p>\n<\/div>\n<\/div>\n<div id=\"fs-id1167128914764\" class=\"problem textbox\">\n<div id=\"fs-id1167129092420\">\n<p id=\"fs-id1167129012774\">The length of nylon rope from which a mountain climber is suspended has an effective force constant of $$ 1.40\\,\u00d7\\,{10}^{4}\\,\\text{N\/m}$$. (a) What is the frequency at which he bounces, given his mass plus and the mass of his equipment are 90.0 kg? (b) How much would this rope stretch to break the climber\u2019s fall if he free-falls 2.00 m before the rope runs out of slack? (<em>Hint:<\/em> Use conservation of energy.) (c) Repeat both parts of this problem in the situation where twice this length of nylon rope is used.<\/p>\n<\/div>\n<div id=\"fs-id1167132454826\" class=\"solution\">\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"qfs-id1167132454826\">Show Solution<\/span><\/p>\n<div id=\"qfs-id1167132454826\" class=\"hidden-answer\" style=\"display: none\">\n<p id=\"fs-id1167132718033\">a. 1.99 Hz; b. 50.2 cm; c. 0.710 m<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"textbox shaded\">\n<h3>Glossary<\/h3>\n<dl id=\"fs-id1167132242610\">\n<dt>elastic potential energy<\/dt>\n<dd id=\"fs-id1167128956760\">potential energy stored as a result of deformation of an elastic object, such as the stretching of a spring<\/dd>\n<\/dl>\n<dl id=\"fs-id1167133361012\">\n<dt>restoring force<\/dt>\n<dd id=\"fs-id1167132222880\">force acting in opposition to the force caused by a deformation<\/dd>\n<\/dl>\n<dl id=\"fs-id1167132455155\">\n<dt>stable equilibrium point<\/dt>\n<dd id=\"fs-id1167128956744\">point where the net force on a system is zero, but a small displacement of the mass will cause a restoring force that points toward the equilibrium point<\/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-1232\">\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":3,"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-1232","chapter","type-chapter","status-publish","hentry","license-all-rights-reserved"],"part":1201,"_links":{"self":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapters\/1232","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\/1232\/revisions"}],"predecessor-version":[{"id":2194,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapters\/1232\/revisions\/2194"}],"part":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/parts\/1201"}],"metadata":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapters\/1232\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/wp\/v2\/media?parent=1232"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/pressbooks\/v2\/chapter-type?post=1232"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/wp\/v2\/contributor?post=1232"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-osuniversityphysics\/wp-json\/wp\/v2\/license?post=1232"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}