bartleby

Videos

Textbook Question
Book Icon
Chapter 9, Problem 47AP

A 0.500-kg sphere moving with a velocity expressed as ( 2.00 i ^ 3.00 j ^ + 1.00 k ^ ) m / s strikes a second, lighter sphere of mass 1.50 kg moving with an initial velocity of ( 1.00 i ^ + 2.00 j ^ 3.00 k ^ ) m / s . (a) The velocity of the 0.500-kg sphere after the collision is ( 1.00 i ^ + 3.00 j ^ 8.00 k ^ ) m / s . Find the final velocity of the 1.50-kg sphere and identify the kind of collision (elastic, inelastic, or perfectly inelastic). (b) Now assume the velocity of the 0.500-kg sphere after the collision is ( 0.250 i ^ + 0.750 j ^ 2.00 k ^ ) m / s . Find the final velocity of the 1.50-kg sphere and identify the kind of collision. (c) What If? Take the velocity of the 0.500-kg sphere after the collision as ( 1.00 i ^ + 3.00 j ^ a k ^ ) m / s . Find the value of a and the velocity of the 1.50-kg sphere after an elastic collision.

(a)

Expert Solution
Check Mark
To determine

The final velocity of the 1.5kg sphere after the collision and the type of collision.

Answer to Problem 47AP

The final velocity of the 1.5kg sphere is 0 and this collision is inelastic.

Explanation of Solution

Given information: The mass of sphere is 0.5kg , the mass of heavier sphere is 1.5kg . The initial velocity of the lighter sphere is (2i^3j^+1k^)m/s and the initial velocity of the heavier sphere is (1i^+2j^3k^)m/s , the final velocity of the lighter sphere is (1i^+3j^8k^)m/s .

According to the law of conservation of momentum,

m1v1+m2v2=m1v1+m2v2 (1)

Here,

m1 is the mass of lighter sphere.

m2 is the mass of heavier sphere.

v1 is the initial velocity of the lighter sphere.

v2 is the initial velocity of the heavier sphere.

v1 is the final velocity of the lighter sphere.

v2 is the final velocity of the heavier sphere.

Substitute 0.5kg for m1 , 1.5kg for m2 , (2i^3j^+1k^)m/s for v1 , (1i^+2j^3k^)m/s for v2 and (1i^+3j^8k^)m/s for v1 in above equation.

[(0.5kg)(2i^3j^+1k^)m/s+(1.5kg)(1i^+2j^3k^)m/s]=[(0.5kg)(1i^+3j^8k^)m/s+1.5kg×v2](0.5i^+1.5j^14k^)kgm/s=(0.5i^+1.5j^14)kgm/s+1.5kg×v21.5kg×v2=0v2=0

The final velocity of the heavier sphere is zero due to which the kinetic energy of the sphere is also zero. This is due to the loss of energy. Thus, the collision is inelastic.

Conclusion:

Therefore, the final velocity of the 1.5kg sphere is 0 and this collision is inelastic.

(b)

Expert Solution
Check Mark
To determine

The final velocity of the 1.5kg sphere.

Answer to Problem 47AP

The final velocity of the 1.5kg sphere is (0.25i^+0.75j^2k^)m/s and this collision is perfectly inelastic.

Explanation of Solution

Given information: The mass of sphere is 0.5kg , the mass of heavier sphere is 1.5kg . The initial velocity of the lighter sphere is (2i^3j^+1k^)m/s and the initial velocity of the heavier sphere is (1i^+2j^3k^)m/s , the final velocity of the lighter sphere is (0.25i^+0.75j^2k^)m/s .

From equation (1), the law of conservation of momentum is,

m1v1+m2v2=m1v1+m2v2

Substitute 0.5kg for m1 , 1.5kg for m2 , (2i^3j^+1k^)m/s for v1 , (1i^+2j^3k^)m/s for v2 and (0.25i^+0.75j^2k^)m/s for v1' in above equation.

[(0.5kg)(2i^3j^+1k^)m/s+(1.5kg)(1i^+2j^3k^)m/s]=[(0.5kg)(0.25i^+0.75j^2k^)m/s+1.5kg×v2'](0.5i^+1.5j^14k^)kgm/s=[(0.5kg)(0.25i^+0.75j^2k^)m/s+1.5kg×v2']v2'=(0.25i^+0.75j^2k^)m/s

Conclusion:

Therefore, the final velocity of the 1.5kg sphere is (0.25i^+0.75j^2k^)m/s and this collision is perfectly inelastic.

(c)

Expert Solution
Check Mark
To determine

The value of a and the velocity of the 1.5kg sphere after an elastic collision.

Answer to Problem 47AP

The value of a and the velocity of the 1.5kg sphere after an elastic collision is 6.74 and 0.419k^m/s respectively.

Explanation of Solution

Given information: The mass of sphere is 0.5kg , the mass of heavier sphere is 1.5kg . The initial velocity of the lighter sphere is (2i^3j^+1k^)m/s and the initial velocity of the heavier sphere is (1i^+2j^3k^)m/s , the final velocity of the lighter sphere is (1i^+3j^+ak^)m/s .

From equation (1), the law of conservation of momentum is,

m1v1+m2v2=m1v1+m2v2

Substitute 0.5kg for m1 , 1.5kg for m2 , (2i^3j^+1k^)m/s for v1 , (1i^+2j^3k^)m/s for v2 and (1i^+3j^+ak^)m/s for v1' in above equation.

[(0.5kg)(2i^3j^+1k^)m/s+(1.5kg)(1i^+2j^3k^)m/s]=[(0.5kg)(1i^+3j^+ak^)m/s+1.5kg×v2'](0.5i^+1.5j^14k^)kgm/s=[(0.5kg)(1i^+3j^+ak^)m/s+1.5kg×v2']14kgm/s=(0.5kg)(ak^)m/s+1.5kg×v2'3v2'+(ak^)m/s=28kgm/s(ak^)m/s (2)

According to the law of conservationof energy,

KEinitial=KEfinal12m1v12+12m2v22=12m1(v1')2+12m2(v2')2m1v12+m2v22=m1(v1')2+m2(v2')2

Substitute 0.5kg for m1 , 1.5kg for m2 , (2i^3j^+1k^)m/s for v1 , (1i^+2j^3k^)m/s for v2 and (1i^+3j^+ak^)m/s for v1' in above equation.

[0.5kg×((2i^3j^+1k^)m/s)2+1.5kg×((1i^+2j^3k^)m/s)2]=[0.5kg((1i^+3j^+ak^)m/s)2+1.5kg(v2')2] (3)

Solve the equation (2) and (3).

a=6.74v2'=0.419k^m/s

Conclusion:

Therefore, the value of a and the velocity of the 1.5kg sphere after an elastic collision are 6.74 and 0.419k^m/s respectively.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!

Chapter 9 Solutions

Bundle: Physics For Scientists And Engineers With Modern Physics, Loose-leaf Version, 10th + Webassign Printed Access Card For Serway/jewett's Physics For Scientists And Engineers, 10th, Single-term

Ch. 9 - A baseball approaches home plate at a speed of...Ch. 9 - A 65.0-kg boy and his 40.0-kg sister, both wearing...Ch. 9 - Two blocks of masses m and 3m are placed on a...Ch. 9 - When you jump straight up as high as you can, what...Ch. 9 - A glider of mass m is free to slide along a...Ch. 9 - You and your brother argue often about how to...Ch. 9 - The front 1.20 m of a 1 400-kg car Ls designed as...Ch. 9 - The magnitude of the net force exerted in the x...Ch. 9 - Water falls without splashing at a rate of 0.250...Ch. 9 - A 1 200-kg car traveling initially at vCi = 25.0...Ch. 9 - A railroad car of mass 2.50 104 kg is moving with...Ch. 9 - Prob. 14PCh. 9 - A car of mass m moving at a speed v1 collides and...Ch. 9 - A 7.00-g bullet, when fired from a gun into a...Ch. 9 - A tennis ball of mass 57.0 g is held just above a...Ch. 9 - (a) Three carts of masses m1 = 4.00 kg, m2 = 10.0...Ch. 9 - You have been hired as an expert witness by an...Ch. 9 - Two shuffleboard disks of equal mass, one orange...Ch. 9 - Prob. 21PCh. 9 - A 90.0-kg fullback running east with a speed of...Ch. 9 - A proton, moving with a velocity of vii, collides...Ch. 9 - A uniform piece of sheet metal is shaped as shown...Ch. 9 - Explorers in the jungle find an ancient monument...Ch. 9 - A rod of length 30.0 cm has linear density (mass...Ch. 9 - Consider a system of two particles in the xy...Ch. 9 - The vector position of a 3.50-g particle moving in...Ch. 9 - Prob. 29PCh. 9 - Prob. 30PCh. 9 - Prob. 31PCh. 9 - A garden hose is held as shown in Figure P9.32....Ch. 9 - Prob. 33PCh. 9 - A rocket has total mass Mi = 360 kg, including...Ch. 9 - Prob. 35APCh. 9 - (a) Figure P9.36 shows three points in the...Ch. 9 - Review. A 60.0-kg person running at an initial...Ch. 9 - A cannon is rigidly attached to a carriage, which...Ch. 9 - A 1.25-kg wooden block rests on a table over a...Ch. 9 - A wooden block of mass M rests on a table over a...Ch. 9 - Two gliders are set in motion on a horizontal air...Ch. 9 - Prob. 42APCh. 9 - Prob. 43APCh. 9 - Why is the following situation impossible? An...Ch. 9 - Review. A bullet of mass m = 8.00 g is fired into...Ch. 9 - Review. A bullet of mass m is fired into a block...Ch. 9 - A 0.500-kg sphere moving with a velocity expressed...Ch. 9 - Prob. 48APCh. 9 - Review. A light spring of force constant 3.85 N/m...Ch. 9 - Prob. 50APCh. 9 - Prob. 51APCh. 9 - Sand from a stationary hopper falls onto a moving...Ch. 9 - Prob. 53CPCh. 9 - On a horizontal air track, a glider of mass m...
Knowledge Booster
Background pattern image
Physics
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Physics for Scientists and Engineers: Foundations...
Physics
ISBN:9781133939146
Author:Katz, Debora M.
Publisher:Cengage Learning
Text book image
Modern Physics
Physics
ISBN:9781111794378
Author:Raymond A. Serway, Clement J. Moses, Curt A. Moyer
Publisher:Cengage Learning
Text book image
Classical Dynamics of Particles and Systems
Physics
ISBN:9780534408961
Author:Stephen T. Thornton, Jerry B. Marion
Publisher:Cengage Learning
Text book image
Principles of Physics: A Calculus-Based Text
Physics
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Glencoe Physics: Principles and Problems, Student...
Physics
ISBN:9780078807213
Author:Paul W. Zitzewitz
Publisher:Glencoe/McGraw-Hill
Text book image
Physics for Scientists and Engineers, Technology ...
Physics
ISBN:9781305116399
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Momentum | Forces & Motion | Physics | FuseSchool; Author: FuseSchool - Global Education;https://www.youtube.com/watch?v=DxKelGugDa8;License: Standard YouTube License, CC-BY