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Question

A man is standing on a cart of mass double the mass of the man. Initially cart is at rest on the smooth ground. Now man jumps with relative velocity v horizontally towards right with respect to cart. Find the work done by man during the process of jumping.

A
mv23
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B
mv2
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C
mv26
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D
none of the above
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Solution

The correct option is A mv23
Let the velocity of man after jumping be u towards right. Then speed of cart is vu towards left.
From conversation of momentum
mu=2m(vu)
u=2v3
Hence work done by man = change in K.E of system

=12mu2+122m(vu)2
=12m(2v3)2+122m(v3)2=mv23

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