Conceptual Physics: The High School Physics Program
Conceptual Physics: The High School Physics Program
9th Edition
ISBN: 9780133647495
Author: Paul G. Hewitt
Publisher: Prentice Hall
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Chapter 12, Problem 21A

Perky rides at different radial distances from the center of a turntable that rotates at a fixed rate. His distances and tangential speeds at three different locations are as follows.

(A) r = 15 c m , v = 7.5 c m / s


(B) r = 10 c m , v = 7.5 c m / s

(C) r = 5.0 c m , v = 2.5 c m / s

Chapter 12, Problem 21A, Perky rides at different radial distances from the center of a turntable that rotates at a fixed

a. Rank from greatest to least, Perky’s angular momenta.

b. Rank from greatest to least, the amounts of friction needed to keep Perky from sliding off.

(a)

Expert Solution
Check Mark
To determine

The rank of the Person P’s angular momenta from greatest to least.

Answer to Problem 21A

The rank of the Person P’s angular momenta from greatest to least is LA>LB>LC .

Explanation of Solution

Formula used:

The expression for the angular momenta as follows:

  L=mvr

Here, m is the mass, v is the tangential speed, and r is the radius of the curved path.

Calculation:

Find the angular momenta for case A as follows:

  LA=mvArALA=m(7.5cm/s)(15 cm)LA=112.5m(cm2/s)

Find the angular momenta for case B as follows:

  LB=mvBrBLB=m(5cm/s)(10 cm)LB=50m(cm2/s)

Find the angular momenta for case A as follows:

  LC=mvCrCLC=m(2.5cm/s)(5 cm)LC=12.5m(cm2/s)

By comparing the values, the angular momenta is LA>LB>LC .

Conclusion:

Thus, the rank of Person P’s angular momenta from greatest to least is LA>LB>LC .

(b)

Expert Solution
Check Mark
To determine

The rank of the amounts of friction needed to keep Person P’s from sliding off from greatest to least.

Answer to Problem 21A

The rank of the amounts of friction needed to keep Person P’s from sliding off from greatest to least is fA>fB>fC .

Explanation of Solution

Formula used:

The expression for the friction as follows:

  f=mv2r

Here, m is the mass, v is the tangential speed, and r is the radius of the curved path.

Calculation:

Find the friction needed for case A as follows:

  fA=mvA2rAfA=m(7.5cm/s)2(15 cm)fA=3.75m N

Find the friction needed for case B as follows:

  fB=mvB2rBfB=m(5cm/s)2(10 cm)fB=2.5m N

Find the angular momenta for case A as follows:

  fC=mvC2rCfC=m(2.5cm/s)2(5 cm)fC=1.25m N

By comparing the values, the friction needed is fA>fB>fC .

Conclusion:

Thus, the rank of amounts of friction needed to keep Person P’s from sliding off from greatest to least is fA>fB>fC .

Chapter 12 Solutions

Conceptual Physics: The High School Physics Program

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