EBK PHYSICS FOR SCIENTISTS AND ENGINEER
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
1st Edition
ISBN: 9780100546714
Author: Katz
Publisher: YUZU
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Chapter 4, Problem 58PQ

Two bicyclists in a sprint race begin from rest and accelerate away from the origin of an xy coordinate system. Miguel’s acceleration is given by (−0.700 i ^ + 1.00 j ^ ) m/s2, and Lance’s acceleration is given by (1.20 i ^ + 0.300 j ^ ) m/s2. a. What is Miguel’s acceleration with respect to Lance? b. What is Miguel’s speed with respect to Lance after 4.50 s have elapsed? c. What is the distance separating Miguel and Lance after 4.50 s have elapsed?

(a)

Expert Solution
Check Mark
To determine

Find the Miguel’s acceleration with respect to Lance.

Answer to Problem 58PQ

The Miguel’s acceleration with respect to Lance is (1.90i^+0.700j^)m/s2.

Explanation of Solution

Integrating the given acceleration will give the velocity of Miguel and Lance as they both starts from rest.

 vm=(0.700ti^+1.00tj^)m/s

vL=(1.20ti^+0.300tj^)m/s

Integrating the velocity will give the position of Miguel and Lance as they both starts from rest.

rm=(0.350t2i^+0.500t2j^)m

rL=(0.600t2i^+0.150t2j^)m

Write the equation for the acceleration of Miguel relative to Lance.

(aM)L=(aM)G+(aG)L=(aM)G(aL)G (I)

Here, (aM)L is the acceleration of Miguel with respect to Lance, (aM)G is the acceleration of Miguel with respect to ground, (aG)L is the acceleration of ground with respect to Lance and (aL)G is the acceleration of Lance with respect to ground.

Conclusion:

Substitute (0.700i^+1.00j^)m/s2 for (aM)G and (1.20i^+0.300j^)m/s2 for (aL)G in equation I.

(aM)L=((0.700i^+1.00j^)m/s2)((1.20i^+0.300j^)m/s2)=(1.90i^+0.700j^)m/s2

Therefore, the Miguel’s acceleration with respect to Lance is (1.90i^+0.700j^)m/s2.

(b)

Expert Solution
Check Mark
To determine

Find the Miguel’s speed with respect to Lance after 4.50 s elapsed.

Answer to Problem 58PQ

The Miguel’s speed with respect to Lance after 4.50 s elapsed is 9.11 m/s.

Explanation of Solution

Write the equation for Miguel’s velocity with respect to Lance.

(vM)L=(vM)G+(vG)L=(vM)G(vL)G (II)

Here, (vM)L is the velocity of Miguel with respect to Lance, (vM)G is the velocity of Miguel with respect to ground, (vG)L is the velocity of ground with respect to Lance and (vL)G is the velocity of Lance with respect to ground.

Conclusion:

Substitute (0.700ti^+1.00tj^)m/s for (vM)G and (1.20ti^+0.300tj^)m/s for (vL)G in equation II.

(vM)L=((0.700ti^+1.00tj^)m/s)((1.20ti^+0.300tj^)m/s)=(1.90ti^+0.700tj^)m/s

Substitute 4.50 s for t in the above equation.

(vM)L=(1.90(4.50 s)i^+0.700(4.50 s)j^)m/s=(8.55i^+3.15j^)m/s

Then the magnitude of velocity is,

v=(8.55 m/s)2+(3.15 m/s)2=9.11 m/s

Therefore, the Miguel’s speed with respect to Lance after 4.50 s elapsed is 9.11 m/s.

(c)

Expert Solution
Check Mark
To determine

Find the distance between Miguel and Lance after 4.50 s elapsed.

Answer to Problem 58PQ

The distance between Miguel and Lance after 4.50 s elapsed is 20.5 m.

Explanation of Solution

Write the equation for Miguel’s position with respect to Lance.

rML=rMrL (III)

Here, rML is the Miguel’s position with respect to Lance, rM is the Miguel’s position and rL is the Lance position.

Conclusion:

Substitute (0.350t2i^+0.500t2j^)m for rM and (0.600t2i^+0.150t2j^)m for rL in equation III.

rML=((0.350t2i^+0.500t2j^)m)((0.600t2i^+0.150t2j^)m)=(0.950t2i^+0.350t2j^)m

Substitute 4.50 s for t in the above equation.

rML=(0.950(4.50 s)2i^+0.350(4.50 s)2j^)m=(19.2i^+7.09j^)m

Then the distance between Miguel and Lance is,

d=(19.2 m)2+(7.09 m)2=20.5 m

Therefore, the distance between Miguel and Lance after 4.50 s elapsed is 20.5 m.

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Chapter 4 Solutions

EBK PHYSICS FOR SCIENTISTS AND ENGINEER

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Position/Velocity/Acceleration Part 1: Definitions; Author: Professor Dave explains;https://www.youtube.com/watch?v=4dCrkp8qgLU;License: Standard YouTube License, CC-BY