Blocks A (mass 5.00 kg) and B (mass 6.50 kg) move on a frictionless, horizontal surface. Initially, block B is at rest and block A is moving toward it at 5.00 m/s. The blocks are equipped with ideal spring bumpers. The collision is head-on, so all motion before and after the collision is along a straight line. Let +x be the direction of the initial motion of block A.

Algebra & Trigonometry with Analytic Geometry
13th Edition
ISBN:9781133382119
Author:Swokowski
Publisher:Swokowski
Chapter3: Functions And Graphs
Section3.3: Lines
Problem 21E
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Blocks A (mass 5.00 kg) and B (mass 6.50 kg)
move on a frictionless, horizontal surface. Initially,
block B is at rest and block A is moving toward it at
5.00 m/s. The blocks are equipped with ideal spring
bumpers. The collision is head-on, so all motion
before and after the collision is along a straight line.
Let +x be the direction of the initial motion of block
А.
Part C
Find the velocity of block B when the energy stored in the spring bumpers is maximum.
Express your answer with the appropriate units.
HÀ
VB =
Value
Units
Submit
Request Answer
Part D
Find the velocity of block A after they have moved apart.
Express your answer with the appropriate units.
HÅ
?
VĀ =
Value
Units
Transcribed Image Text:Blocks A (mass 5.00 kg) and B (mass 6.50 kg) move on a frictionless, horizontal surface. Initially, block B is at rest and block A is moving toward it at 5.00 m/s. The blocks are equipped with ideal spring bumpers. The collision is head-on, so all motion before and after the collision is along a straight line. Let +x be the direction of the initial motion of block А. Part C Find the velocity of block B when the energy stored in the spring bumpers is maximum. Express your answer with the appropriate units. HÀ VB = Value Units Submit Request Answer Part D Find the velocity of block A after they have moved apart. Express your answer with the appropriate units. HÅ ? VĀ = Value Units
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