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Question

A particle of mass m1 moves with speed u1 and collide head on with a stationary particle of mass m2. After the collision, the velocities of the particles are v1 and v2, and e is coefficient of restitution for the collision. If v1 is to be positive, i.e., for the first particle to continue moving in same direction then:

A
m2m1>e
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B
m1m2>e
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C
m1+m2m2>e
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D
m1m2m2>e
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Solution

The correct option is B m1m2>e
Draw a labelled diagram.

Diagram

Find the ratio of masses.
Formula used:
m1u1 + m2u2=m1v1 + m2v2

e=relative velocity of separationrelative velocity of approach

Applying momentum conservation,
m1u1 + m2u2=m1v1 + m2v2 (i)

Apply coefficient of restitution
e=(v1v2)u1u2

e=(v1v2)u1

v2v1=eu1 (ii)

From (i) & (ii),

v1=v2eu1

m1u1=m1(v2eu1)+m2v2

m1u1=m1v2m1eu1+m2v2

m1u1+m1eu1=m1v2+m2v2

v2=m1u1(1+e)m1+m2

and
v1=(m1em2)u1m1m2

If v1 is to be positive,

v1>0

m1em2>0

m1m2>e
Final answer: (b)

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