Principles of Physics: A Calculus-Based Text
Principles of Physics: A Calculus-Based Text
5th Edition
ISBN: 9781133104261
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
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Chapter 12, Problem 22P

(a)

To determine

To describe: The appropriate analysis model of jumper’s motion for the free fall part.

(a)

Expert Solution
Check Mark

Explanation of Solution

A free falling object is an object that is falling under the sole influence of gravity.

Any object that is being acted upon only by the force of gravity is said to be in a state of free fall. The free fall phase follows the parabolic behavior. Since the only gravity acted on the free fall, the acceleration is constant.

Conclusion:

Therefore, the jumper’s motion has the constant acceleration.

(b)

To determine

The time required for free fall.

(b)

Expert Solution
Check Mark

Answer to Problem 22P

The time required for free fall is 1.49s .

Explanation of Solution

Given information:

The mass of bungee jumper is 65.0kg , the stretched length of the cord and free fall height is 11.0m , the distance where the jumper reaches before bouncing back is 36.0m and the height of simple harmonic oscillation is 25.0m .

The equation for the kinematic is,

yf=yi+vyt+12ayt2

yf is the free fall height.

t is the time.

yi is the initial height.

vy is the velocity.

ay is the acceleration.

Substitute 11.0m for yf , 0 for yi , 0 for vy and 9.8m/s2 for ay in above equation to find t .

11.0m=0+(0)t+12(9.8m/s2)t2=12(9.8m/s2)t2t=(2×11.0m)9.8m/s2=1.49s

Conclusion:

Therefore, the time required for free fall is 1.49s .

(c)

To determine

To describe: Weather the system of the bungee jumper, the spring and the earth is isolated or non-isolated for simple harmonic oscillation.

(c)

Expert Solution
Check Mark

Explanation of Solution

When a system is isolated, it means that it is separated from its environment in such a way that no energy flows on or out of the system. The non-isolated system interacts with its environment and exchanges the energy.

The energy of the system of the bungee jumper, the spring and the earth is exchanged only with each other not outside from the system. Since the earth and spring act on the jumper, the system is isolated.

Conclusion:

Therefore, the system the bungee jumper, the spring and the earth is isolated.

(d)

To determine

The spring constant of the bungee cord.

(d)

Expert Solution
Check Mark

Answer to Problem 22P

The spring constant of the bungee cord is 73.38N/m2 .

Explanation of Solution

Given information:

The mass of bungee jumper is 65.0kg , the stretched length of the cord and free fall height is 11.0m , the distance where the jumper reaches before bouncing back is 36.0m and the height of simple harmonic oscillation is 25.0m .

The law of conservation of the energy is,

mgh=12kh12

m is the mass of jumper.

g is the acceleration due to gravity.

h is the total height.

k is the spring constant.

h1 is the height of simple harmonic oscillation.

Substitute 65.0kg for m , 9.8m/s2 for g , 36.0m for h and 25.0m for h1 in above equation to find k .

(65.0kg)(9.8m/s2)(36.0m)=12k(25.0m)2k=2(65.0kg)(9.8m/s2)(36.0m)(25.0m)2=73.38N/m2

Conclusion:

Therefore, the spring constant of the bungee cord is 73.38N/m2 .

(e)

To determine

The location of the equilibrium point where the spring force balances the gravitational force exerted on the jumper.

(e)

Expert Solution
Check Mark

Answer to Problem 22P

The location of the equilibrium point where the spring force balances the gravitational force exerted on the jumper is 16.32m .

Explanation of Solution

Section 1;

To determine: The equilibrium point from the lorded.

Answer: The equilibrium point from the lorded is 19.68m .

Given information:

The mass of bungee jumper is 65.0kg , the stretched length of the cord and free fall height is 11.0m , the distance where the jumper reaches before bouncing back is 36.0m and the height of simple harmonic oscillation is 25.0m .

The equation for the equilibrium point from the lorded is,

kx=mgx=mgk

  • x is the position of the spring.

The equilibrium point is calculated as,

y=L+x

  • L is the stretched length of the chord.

Substitute mgk for x in above expression.

y=L+(mgk)

Substitute 65.0kg for m , 9.8m/s2 for g , 73.38N/m2 for k and 11.0m for L in above equation to find y .

y=(11.0m)+(65.0kg)(9.8m/s2)(73.38N/m2)=19.68m

Section 2;

To determine: The location of the equilibrium point where the spring force balances the gravitational force exerted on the jumper.

Answer: The location of the equilibrium point where the spring force balances the gravitational force exerted on the jumper is 16.32m .

Given information:

The mass of bungee jumper is 65.0kg , the stretched length of the cord and free fall height is 11.0m , the distance where the jumper reaches before bouncing back is 36.0m and the height of simple harmonic oscillation is 25.0m .

The amplitude of the motion is,

A=hy

Substitute 36.0m for h and 19.68m for y in above equation to find A .

A=(36.0m)(19.68m)=16.32m

Conclusion:

Therefore, the location of the equilibrium point where the spring force balances the gravitational force exerted on the jumper is 16.32m .

(f)

To determine

The angular frequency of the oscillation.

(f)

Expert Solution
Check Mark

Answer to Problem 22P

The angular frequency of the oscillation is 1.06rad/s .

Explanation of Solution

Given information:

The mass of bungee jumper is 65.0kg , the stretched length of the cord and free fall height is 11.0m , the distance where the jumper reaches before bouncing back is 36.0m and the height of simple harmonic oscillation is 25.0m .

The formula to calculate angular frequency of the oscillation is,

ω=km

Substitute 65.0kg for m and 73.38N/m2 for k in above equation to find ω .

ω=73.38N/m265.0kg=1.06rad/s

Conclusion:

Therefore, the angular frequency of the oscillation is 1.06rad/s .

(g)

To determine

The time interval required for the cord to stretched by 25.0m .

(g)

Expert Solution
Check Mark

Answer to Problem 22P

The time interval required for the cord to stretched by 25.0m is 2.0s .

Explanation of Solution

Given information:

The mass of bungee jumper is 65.0kg , the stretched length of the cord and free fall height is 11.0m , the distance where the jumper reaches before bouncing back is 36.0m and the height of simple harmonic oscillation is 25.0m .

The expression for the position of a particle in simple harmonic motion is,

x=Acos(ωt1)

Substitute mgk for x in above expression.

mgk=Acos(ωt1)

Substitute 65.0kg for m , 9.8m/s2 for g , 73.38N/m2 for k , 16.32m for A and 1.06rad/s for ω in above equation to find t1 .

(65.0kg)(9.8m/s2)(73.38N/m2)=(16.32m)cos((1.06rad/s)t1)8.68m(16.32m)=cos((1.06rad/s)t1)0.53=cos((1.06rad/s)t1)t1=2.0s

Conclusion:

Therefore, the time interval required for the cord to stretched by 25.0m is 2.0s .

(h)

To determine

The total time interval for the entire 36.0m drop.

(h)

Expert Solution
Check Mark

Answer to Problem 22P

The total time interval for the entire 36.0m drop is 3.49s .

Explanation of Solution

Given information:

The mass of bungee jumper is 65.0kg , the stretched length of the cord and free fall height is 11.0m , the distance where the jumper reaches before bouncing back is 36.0m and the height of simple harmonic oscillation is 25.0m .

The total time interval for the entire 36.0m drop is,

T=t+t1

Substitute 1.49s for t and 2.0s for t1 in above equation to find T .

T=1.49s+2.0s=3.49s

Conclusion:

Therefore, the total time interval for the entire 36.0m drop is 3.49s .

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Chapter 12 Solutions

Principles of Physics: A Calculus-Based Text

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SIMPLE HARMONIC MOTION (Physics Animation); Author: EarthPen;https://www.youtube.com/watch?v=XjkUcJkGd3Y;License: Standard YouTube License, CC-BY