Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
1st Edition
ISBN: 9781337026345
Author: Katz
Publisher: Cengage
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Chapter 4, Problem 32PQ

Some cats can be trained to jump from one location to another and perform other tricks. Kit the cat is going to jump through a hoop. He begins on a wicker cabinet at a height of 1.750 m above the floor and jumps through the center of a vertical hoop, reaching a peak height 3.125 m above the floor. a. With what initial velocity did Kit leave the cabinet if the hoop is at a horizontal distance of 1.544 m from the cabinet? b. If Kit lands on a bed at a horizontal distance of 3.587 m from the cabinet, how high above the ground is the bed?

(a)

Expert Solution
Check Mark
To determine

The initial velocity of Kit.

Answer to Problem 32PQ

The initial velocity of Kit is v=(2.92i^+5.18j^) m/s.

Explanation of Solution

Kit is the cat that is trained to jump from one location to another through the center of a vertically placed hoop. Kit is at a height of yi=1.750 m and after jumping through the hoop is reached a peak height of yf=3.125 m above the floor. If the horizontal distance of the hoop is xfxi=Δx=1.544 m, the initial velocity of Kit be.

Physics for Scientists and Engineers: Foundations and Connections, Chapter 4, Problem 32PQ

Write the formula for the vertical final velocity [Kinematic equation for constant acceleration]

    vyf2=vyi2+2ayΔy                                                                                                 (I)

Here, vyi is the initial vertical velocity, vyf is the final vertical velocity, ay is the vertical acceleration, Δy is the vertical displacement.

Write the formula for the vertical position

    yf=yi+vyit+12ayt2                                                                                            (II)

Here, yf is the final position in y axis, yi is the initial position in y axis,

Write the formula for the horizontal position

    xf=xi+vxit                                                                                                       (III)

Here, xf is the final position in x axis, xi is the initial position in x axis, vxi is the horizontal velocity and t is the time.

Kit jumped from initial position 1.750 m to 3.125 m, therefore, the total vertical displacement of Kit is 3.125 m1.750 m=1.375 m. The final vertical velocity of Kit after reached a peak height of yf=3.125 m above the floor is vyf=0 as Kit is standing still. The vertical acceleration is due to gravity pulling the Kit in direction downward, ay=9.81 m/s2.

Substituting 1.375 m for Δy, 9.81 m/s2 for ay in equation (I) to find the value of vyi

0=vyi2+2(9.81 m/s2)(1.375 m)vyi=5.19 m/s

The initial vertical velocity of Kit is 5.19 m/s.

Substituting 5.19 m/s for vyi, 9.81 m/s2 for ay in equation (II) to find the value of t

0=5.19 m/s(9.81 m/s2)tt=0.529s

The time taken for Kit to reach the hoop is 0.529s.

Substitute 1.544 m for Δx and 0.529s for t in equation (III) to find the value of vxi

Δx=vxit1.544 m=vxi(0.529s)vxi=2.92 m/s

The initial horizontal velocity of Kit is 2.92 m/s and the initial vertical velocity of Kit is 5.19 m/s. Therefore, in component form, the initial velocity of Kit is v=(2.92i^+5.18j^) m/s.

(b)

Expert Solution
Check Mark
To determine

How high above the ground is the bed.

Answer to Problem 32PQ

The bed is 0.72 m above the ground.

Explanation of Solution

The Kit lands on a bed at a horizontal distance of 3.587 m away from its initial position yi=1.750 m.

Substitute 1.544 m for Δx and 2.92 m/s for vxi in equation (III) to find the value of t

3.587 m=2.92 s×tt=1.23 s

The time taken for the Kit to land on the bed is 1.23 s.

Substituting 5.19 m/s for vyi, 1.23 s for t, 1.750 m for yi and 9.81 m/s2 for ay in equation (II) to find the value of yf

yf=1.750 m+(5.19 s)(1.23 s)12(9.81 m/s2)(1.23 s)2yf=(1.750+6.397.42) myf=0.72 m

Thus, the bed is 0.72 m above the ground.

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Chapter 4 Solutions

Physics for Scientists and Engineers: Foundations and Connections

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