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Question

Particle A makes a perfectly elastic collision with another particle B at rest. After collision, they fly apart in opposite directions with equal speeds. The ratio of masses mAmB is

A
1:2
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B
1:3
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C
1:4
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D
1:3
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Solution

The correct option is B 1:3
Assume u1= initial speed of particle A
v1= speed of particle A & B after collision.
There is no external force, hence from linear momentum conservation :
m1u1+0=m1(v1)+m2(v1)
m1u1=(m1+m2)v1 ... (1)

As we know, collision is elastic.


e=1=v1(v1)u10=1
or 2v1=u1 ... (2)
From equation (1) and (2),
m1(2v1)=(m1+m2)v1
2m1=m1+m2
or m1m2=mAmB=13

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