Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
1st Edition
ISBN: 9781133939146
Author: Katz, Debora M.
Publisher: Cengage Learning
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Chapter 3, Problem 74PQ

Problems 74 and 75 are paired.

74. N A classroom clock has a small magnifying glass embedded near the end of the minute hand. The magnifying glass may be modeled as a particle. Class begins at 7:55 and ends at 8:50. The length of the minute hand is 0.300 m. a. Find the average velocity of the magnifying glass at the end of the minute hand using the coordinate system shown in Figure P3.74. Give your answer in component form. b. Find the magnitude and direction of the average velocity. c. Find the average speed and in the CHECK and THINK step, compare to the average velocity.

Chapter 3, Problem 74PQ, Problems 74 and 75 are paired. 74. N A classroom clock has a small magnifying glass embedded near

(a)

Expert Solution
Check Mark
To determine

The average velocity of the magnifying glass at the end of the minute hand using the coordinate system.

Answer to Problem 74PQ

The average velocity of the magnifying glass is vav=3.33×105(i^+j^)m/s_.

Explanation of Solution

Write the expression for the average velocity.

    vav=ΔrΔt                                                                                                                  (I)

Here, vav is the average velocity, Δr is the change in position, Δt is the change in time.

The initial position of the minute hand is given by,

    ri=(0.300m)[cos(120°)i^+sin(120°)j^]                                                     (II)

The final position of the minute hand is given by,

    rf=(0.300m)[cos(150°)i^+sin(150°)j^]                                                   (III)

Conclusion:

It takes 55min to change the position, substitute 55min for Δt and equation (II) and equation (III) in equation (I) to find vav.    vav=(0.300m)[cos(150°)i^+sin(150°)j^](0.300m)[cos(120°)i^+sin(120°)j^]55min×60s1min=3.33×105(i^+j^)m/s

Therefore, the average velocity of the magnifying glass is vav=3.33×105(i^+j^)m/s_.

(b)

Expert Solution
Check Mark
To determine

The magnitude and the direction of the average velocity.

Answer to Problem 74PQ

The magnitude and the direction of the average velocity is 4.71×105m/s_ at 45°below the xaxis_.

Explanation of Solution

The magnitude of the average velocity is given by taking the square root of the sum of the squares of the ith and jth components.

  vav=3.33×105(i^+j^)m/s

The magnitude of the average velocity is,

    |vav|=3.33×105(1)2+(1)2m/s=3.33×1052m/s=4.71×105m/s

The direction of the average velocity is given by,

    θ=tan1(vyvx)                                                                                                     (IV)

Conclusion:

Substitute 3.33×105 for vx and 3.33×105 for vy in equation (IV) to find θ.

    θ=tan1(3.33×1053.33×105)=tan1(1)=45°below the xaxis.

Therefore, the magnitude and the direction of the average velocity is 4.71×105m/s_ at 45°below the xaxis_.

(c)

Expert Solution
Check Mark
To determine

The comparison of average speed with the average velocity.

Answer to Problem 74PQ

The speed is about an order of magnitude larger because the distance traveled is much larger than the displacement at that time.

Explanation of Solution

The average speed is the total distance traveled in the time the clock hand moves from the initial to the final position.  The distance traveled is 55 out of the 60 of the circumference traced out by the end of the minute hand which can be expressed as,

    d=5560(2πr)                                                                                                  (V)

Write the expression for the displacement.

    s=dΔt                                                                                                            (VI)

Here, s is the displacement, Δt is the change in time.

Conclusion:

Substitute 0.300m for r in equation (V) to find d.

    d=5560(2π×0.300m)=1.73m

Substitute 1.73m for d and 55min for Δt in equation (VI) to find s.

    s=1.73m55min(60s1min)=1.73m3300s=5.24×104m

Comparing the value of displacement and distance the magnitude is larger for the distance so that the magnitude of the speed will be higher than the magnitude of the average velocity.

Therefore, the speed is about an order of magnitude larger because the distance traveled is much larger than the displacement at that time.

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Chapter 3 Solutions

Physics for Scientists and Engineers: Foundations and Connections

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