Problem 1Q: Which of the following describe for the SHM of Fig. 15-20a: a /2, b 3 /3, c 3 /2 ?... Problem 2Q: The velocity vt of a particle undergoing SHM is graphed in Fig. 15-20b. Is the particle momentarily... Problem 3Q: The acceleration at of a particle undergoing SHM is graphed in Fig. 15-21. a Which of the labeled... Problem 4Q: Which of the following relationships between the acceleration a and the displacement x of a particle... Problem 5Q: You are to complete Fig. 15-22a so that it is a plot of velocity v versus time t for the springblock... Problem 6Q: You are to complete Fig. 15-23a so that it is a plot of acceleration a versus time t for the spring ... Problem 7Q: Figure 15-24 shows the xt curves for three experiments involving a particular springbox system... Problem 8Q: Figure 15-25 shows plots of the kinetic energy K versus position x for three harmonic oscillators... Problem 9Q: Figure 15-26 shows three physical pendulums consisting of identical uniform spheres of the same mass... Problem 10Q: You are to build the oscillation transfer device shown in Fig. 15-27. It consists of two springblock... Problem 11Q: In Fig. 15-28, a springblock system is put into SHM in two experiments. In the first, the block is... Problem 12Q: Figure 15-29 gives, for three situations, the displacements xt of a pair of simple harmonic... Problem 1P: An object undergoing simple harmonic motion takes 0.25 s to travel from one point of zero velocity... Problem 2P: A 0.12 kg body undergoes simple harmonic motion of amplitude 8.5 cm and period 0.20 s. a What is the... Problem 3P: What is the maximum acceleration of a platform that oscillates at amplitude 2.20 cm and frequency... Problem 4P: An automobile can be considered to be mounted on four identical springs as far as vertical... Problem 5P: SSM In an electric shaver, the blade moves back and forth over a distance of 2.0 mm in simple... Problem 6P: A particle with a mass of 1.00 1020 kg is oscillating with simple harmonic motion with a period of... Problem 7P: SSM A loudspeaker produces a musical sound by means of the oscillation of a diaphragm whose... Problem 8P: What is the phase constant for the harmonic oscillator with the position function xt given in Fig.... Problem 9P: The position function x = 6.0 m cos3 rad/st /3 rad gives the simple harmonic motion of a body. At t... Problem 10P: An oscillating blockspring system takes 0.75 s to begin repeating its motion. Find a the period, b... Problem 11P: In Fig. 15-31, two identical springs of spring constant 7580 N/m are attached to a block of mass... Problem 12P: What is the phase constant for the harmonic oscillator with the velocity function vt given in Fig.... Problem 13P: SSM An oscillator consists of a block of mass 0.500 kg connected to a spring. When set into... Problem 14P: A simple harmonic oscillator consists of a block of mass 2.00 kg attached lo a spring of spring... Problem 15P: SSM Two particles oscillate in simple harmonic motion along a common straight-line segment of length... Problem 16P: Two particles execute simple harmonic motion of the same amplitude and frequency along close... Problem 17P: ILW An oscillator consists of a block attached to a spring k = 400 N/m. At some time t, the position... Problem 18P: GO At a certain harbor, the tides cause the ocean surface to rise and fall a distance d from highest... Problem 19P: A block rides on a piston a squat cylindrical piece that is moving vertically with simple harmonic... Problem 20P: GO Figure 15-33a is a partial graph of the position function xt for a simple harmonic oscillator... Problem 21P: ILW In Fig. 15-31, two springs are attached to a block that can oscillate over a frictionless floor.... Problem 22P: GO Figure 15-34 shows block 1 of mass 0.200 kg sliding to the right over a frictionless elevated... Problem 23P: SSM WWW A block is on a horizontal surface a shake table that is moving back and forth horizontally... Problem 24P: In Fig. 15-35, two springs are joined and connected to a block of mass 0.245 kg that is set... Problem 25P: GO In Fig. 15-36, a block weighing 14.0 N, which can slide without friction on an incline at angle ... Problem 26P: GO In Fig. 15-37, two blocks m = 1.8 kg and M = 10 kg and a spring k = 200 N/m are arranged on a... Problem 27P: SSM When the displacement in SHM is one-half the amplitude xm, what fraction of the total energy is... Problem 28P: Figure 15-38 gives the one-dimensional potential energy well for a 2.0 kg particle the function Ux... Problem 29P: SSM Find the mechanical energy of a blockspring system with a spring constant of 1.3 N/cm and an... Problem 30P: An oscillating blockspring system has a mechanical energy of 1.00 J, an amplitude of 10.0 cm, and a... Problem 31P: ILW A 5.00 kg object on a horizontal frictionless surface is attached to a spring with k = 1000 N/m.... Problem 32P: Figure 15-39 shows the kinetic energy K of a simple harmonic oscillator versus its position x. The... Problem 33P: GO A block of mass M = 5.4 kg, at rest on a horizontal frictionless table, is attached to a rigid... Problem 34P: GO In Fig. 15-41, block 2 of mass 2.0 kg oscillates on the end of a spring in SHM with a period of... Problem 35P: A 10 g particle undergoes SHM with an amplitude of 2.0 mm, a maximum acceleration of magnitude 8.0 ... Problem 36P: If the phase angle for a blockspring system in SHM is /6 rad and the blocks position is given by x =... Problem 37P: GO A massless spring hangs from the ceiling with a small object attached to its lower end. The... Problem 38P: A 95 kg solid sphere with a 15 cm radius is suspended by a vertical wire. A torque of 0.20 N m is... Problem 39P: SSM WWW The balance wheel of an old-fashioned watch oscillates with angular amplitude rad and... Problem 40P: ILW A physical pendulum consists of a meter stick that is pivoted at a small hole drilled through... Problem 41P: SSM In Fig. 15-42, the pendulum consists of a uniform disk with radius r = 10.0 cm and mass 500 g... Problem 42P: Suppose that a simple pendulum consists of a small 60.0 g bob at the end of a cord of negligible... Problem 43P: a If the physical pendulum of Fig. 15-13 and the associated sample problem is inverted and suspended... Problem 44P: A physical pendulum consists of two meter-long sticks joined together as shown in Fig. 15-43. What... Problem 45P: A performer seated on a trapeze is swinging back and forth a period of 8.85 s. If she stands up,... Problem 46P: A physical pendulum has a center of oscillation at distance 2L/3 from its point of suspension. Show... Problem 47P: In Fig. 15-44, a physical pendulum consists of a uniform solid disk of radius R = 2.35 cm supported... Problem 48P: GO A rectangular block, with face lengths a = 35 cm and b = 45 cm, is to be suspended on a thin... Problem 49P: GO The angle of the pendulum of Fig. 15-11b is given by = m cos4.44 rad/st . If at t = 0, = 0.040... Problem 50P Problem 51P: GO In Fig. 15-46, a stick of length L = 1.85 m oscillates as a physical pendulum. a What value of... Problem 52P: GO The 3.00 kg cube in Fig. 15-47 has edge lengths d = 6.00 cm and is mounted on an axle through its... Problem 53P: SSM ILW In the overhead view of Fig. 15-48, a long uniform rod of mass 0.600 kg is free to rotate in... Problem 54P Problem 55P: GO A pendulum is formed by pivoting a long thin rod about a point on the rod. In a series of... Problem 56P: In Fig. 15-50: a 2.50 kg disk of diameter D = 42.0 cm is supported by a rod of length L = 76.0 cm... Problem 57P: The amplitude of a lightly damped oscillator decreases by 3.0 during each cycle. What percentage of... Problem 58P: For the damped oscillator system shown in Fig. 15-16. with m = 250 g, k = 85 N/m, and b = 70 g/s,... Problem 59P: SSM WWW For the damped oscillator system shown in Fig, 15-16, the block has a mass of 1.50 kg and... Problem 60P: The suspension system of a 2000 kg automobile sags 10 cm when the chassis is placed on it. Also, the... Problem 61P: For Eq. 15-45, suppose the amplitude xm is given by xm=Fm[m2(d22)2+b2d2]1/2, where Fm is the... Problem 62P: Hanging from a horizontal beam are nine simple pendulums of the following lengths: a 0.10, b 0.30, c... Problem 63P: A. 1000 kg car carrying four 82 kg people travels over a washboard dirt road with corrugations 4.0 m... Problem 64P: Although California is known for earthquakes, is has large regions dotted with precariously balanced... Problem 65P: A loudspeaker diaphragm is oscillating in simple harmonic motion with a frequency of 440 Hz and a... Problem 66P: A uniform spring with k = 8600 N/m is cut into pieces 1 and 2 of unstretched lengths L1 = 7.0 cm and... Problem 67P: GO In Fig. 15-51, three 10, 000 kg ore cars are held at rest on a mine railway using a cable that is... Problem 68P: A 2.00 kg block hangs from a spring. A 300 g body hung below the block stretches the spring 2.00 cm... Problem 69P: SSM In the engine of a locomotive, a cylindrical piece known as a piston oscillates in SHM in a... Problem 70P: GO A wheel is free to rotate about its fixed axle. A spring is attached to one of its spokes a... Problem 71P: A 50.0 g stone is attached to the bottom of a vertical spring and see vibrating. If the maximum... Problem 72P: A uniform circular disk: whose radius R is 12.6 cm is suspended as a physical pendulum from a point... Problem 73P: SSM A vertical spring stretches 9.6 cm when a 1.3 kg block is hung from its end. a Calculate the... Problem 74P: A massless spring with spring constant 19 N/m hangs vertically. A body of mass 0.20 kg is attached... Problem 75P: A 4.00 kg block is suspended from a spring with k = 500 N/m. A 50.0 g bullet is fired into the block... Problem 76P: A 55.0 g block oscillates in SHM on the end of a spring with k = 1500 N/m according to x = xm cost ... Problem 77P: Figure 15-53 gives the position of a 20 g block oscillating in SHM on the end of a spring. The... Problem 78P: Figure 15-53 gives the position xt of a block oscillating in SHM on the end of a spring ts = 40.0... Problem 79P: Figure 15-54 shows the kinetic energy K of a simple pendulum versus its angle from the vertical.... Problem 80P: A block is in SHM on the end of a spring, with position given by x = xm cost . If = /5 rad, then at... Problem 81P: A simple harmonic oscillator consists of a 0.50 kg block attached to a spring. The block slides back... Problem 82P: A simple pendulum of length 20 cm and mass 5.0 g is suspended in a race car traveling with constant... Problem 83P: The scale of a spring balance that reads from 0 to 15.0 kg is 12.0 cm long. A package suspended from... Problem 84P: A 0.10 kg block oscillates back and forth along a straight line on a frictionless horizontal... Problem 85P: The end point of a spring oscillates with a period of 2.0 s when a block with mass m is attached to... Problem 86P: The tip of one prong of a tuning fork undergoes SHM of frequency 1000 Hz and amplitude 0.40 mm. For... Problem 87P Problem 88P: A block weighing 20 N oscillates at one end of a vertical spring for which k = 100 N/m; the other... Problem 89P: A 3.0 kg particle is in simple harmonic motion in one dimension and moves according to the equation... Problem 90P: A particle executes linear SHM with frequency 0.25 Hz about the point x = 0. at t = 0, it has... Problem 91P: SSM What is the frequency of a simple pendulum 2.0 m long a in a room, b in an Elevator accelerating... Problem 92P: A grandfather clock has a pendulum that consists of a thin brass disk of radius r = 15.00 cm and... Problem 93P: A 4.00 kg block hangs from a spring, extending it 16.0 cm from its unstretched position. a What is... Problem 94P: What is the phase constant for SMH with at given in Fig. 15-57 if the position function xt has the... Problem 95P: An engineer has an odd-shaped 10 kg object and needs to find its rotational inertia about an axis... Problem 96P: A spider can tell when its web has captured, say, a fly because the flys thrashing causes the web... Problem 97P: A torsion pendulum consists of a metal disk with a wire running through its center and soldered in... Problem 98P: When a 20 N can is hung from the bottom of a vertical spring, it causes the spring to stretch 20 cm.... Problem 99P: For a simple pendulum, find the angular amplitude m at which the restoring torque required for... Problem 100P: In Fig. 15-59, a solid cylinder attached to a horizontal spring k = 3.00 N/m rolls without slipping... Problem 101P: SSM A 1.2 kg block sliding on a horizontal frictionless surface is attached to a horizontal spring... Problem 102P: A simple harmonic oscillator consists of an 0.80 kg block attached to a spring k = 200 N/m. The... Problem 103P: A block sliding on a horizontal frictionless surface is attached to a horizontal spring with a... Problem 104P: A damped harmonic oscillator consists of a block m = 2.00 kg, a spring k = 10.0 N/m, and a damping... Problem 105P: A block weighing 10.0 N is attached to the lower end of a vertical spring k = 200.0 N/m, the other... Problem 106P: A simple harmonic oscillator consists of a block attached to a spring with k = 200 N/m. The block... Problem 107P: The vibration frequencies of atoms in solids at normal temperatures are of the order of 1013 Hz.... Problem 108P: Figure 15-61 shows that if we hang a block on the end of a spring with spring constant k, the spring... Problem 109P: The physical pendulum in Fig. 15-62 has two possible pivot points A and B. Point A has a fixed... Problem 110P: A common device for entertaining a toddler is a jump seat that hangs from the horizontal portion of... Problem 111P: A 2.0 kg block executes SHM while attached to a horizontal spring of spring constant 200 N/m. The... Problem 112P: In Fig. 15-64, a 2500 kg demolition ball swings from the end of a crane. The length of the swinging... Problem 113P: The center of oscillation of a physical pendulum has this interesting property: It an impulse... Problem 114P: A hypothetical large slingshot is stretched 2.30 m to launch a 170 g projectile with speed... Problem 115P: What is the length of a simple pendulum whose full swing from left to right and then back again... Problem 116P: A 2.0 kg block is attached to the end of a spring with a spring constant of 350 N/m and forced to... format_list_bulleted