Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
15th Edition
ISBN: 9781305289963
Author: Debora M. Katz
Publisher: Cengage Custom Learning
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Chapter 8, Problem 17PQ

(a)

To determine

The potential energy at top and the bottom and the change in potential energy.

(a)

Expert Solution
Check Mark

Answer to Problem 17PQ

The potential energy at bottom is 0_, the potential energy at top is 717J_ and the change in potential energy is 717J_.

Explanation of Solution

The diagram for the position of the child is given in figure 1.

  Physics for Scientists and Engineers: Foundations and Connections, Chapter 8, Problem 17PQ

  Figure 1

Write the equation of potential energy at bottom.

  UB=mgyb                                                                                                   (I)

Here, UB is the potential energy at bottom, m is the mass, g is the gravitational acceleration and yb is the bottom height.

Write the equation of potential energy at top.

  UT=mgyT                                                                                                   (II)

Here, UT is the potential energy at top, m is the mass, g is the gravitational acceleration and yT is the top height.

Write the expression for the top height.

  yT=hsinθ                                                                                              (III)

Here, h is the length and θ is the angle.

Rewrite the expression from equation (II).

  UT=mghsinθ                                                                                         (IV)

Write the expression for the change in potential energy.

  (ΔU)=UBUT                                                                                          (V)

Here, (ΔU) is the change in potential energy.

Conclusion:

Substitute 0 for yb in equation (I) to find UB.

  UB=mg(0)=0J

Thus, The potential energy at bottom is 0_.

Substitute 55.0kg for m, 9.8m/s2 for g, 8ft for h and 33° for θ in equation (IV) to find UT.

  UT=(55.0kg)(9.8m/s2)[(8ft)(0.3048m1ft)]sin(33.0°)=(55.0kg)(9.8m/s2)(2.44m)sin(33.0°)=717J

Thus, the potential energy at top is 717J_.

Substitute 0J for UB, 717J for UT in equation (V) to find (ΔU).

  (ΔU)=(0J)(717J)=717J

Thus, the change in potential energy is 717J_.

(b)

To determine

The potential energy at top and the bottom and the change in potential energy by choosing the top of the slide as reference frame.

(b)

Expert Solution
Check Mark

Answer to Problem 17PQ

The potential energy at top is 0_, the potential energy at bottom is 717J_ and the change in potential energy is 717J_.

Explanation of Solution

Write the equation of potential energy at bottom.

  UB=mgyb                                                                                                         (VI)

Here, UB is the potential energy at bottom, m is the mass, g is the gravitational acceleration and yb is the bottom height.

Write the equation of potential energy at bottom.

  UT=mgyT                                                                                                       (VII)

Here, UT is the potential energy at top, m is the mass, g is the gravitational acceleration and yT is the top height.

Write the expression for the bottom height.

  yb=hsinθ                                                                                                     (VIII)

Here, h is the length and θ is the angle.

Rewrite the expression from equation (I).

  UB=mg(hsinθ)                                                                                              (IX)

Write the expression for the change in potential energy.

  (ΔU)=UBUT                                                                                                   (X)

Here, (ΔU) is the change in potential energy.

Conclusion:

Substitute, 0 for yb in equation (VII) to find UT.

  UT=mg(0)=0J

Thus, The potential energy at top is 0_.

Substitute, 55.0kg for m, 9.8m/s2 for g, 8ft for h and 33° for θ in equation (IX) to find UB.

  UB=(55.0kg)(9.8m/s2)[(8ft)(0.3048m1ft)]sin(33.0°)=(55.0kg)(9.8m/s2)(2.44m)sin(33.0°)=717J

Thus, the potential energy at bottom is 717J_.

Substitute, 0J for UT, 717J for UB in equation (X) to find (ΔU).

  (ΔU)=(717J)(0J)=717J

Thus, the change in potential energy is 717J_.

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Chapter 8 Solutions

Physics for Scientists and Engineers: Foundations and Connections

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