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Question

A particle of mass 0.01 kg travels along a curve with velocity given by 4^i+16^k ms1. After some time, its velocity becomes 8^i+20^j ms1 due to the action of a conservative force. The work done on particle during this interval of time is


A

0.32 J

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B

6.9 J

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C

9.6 J

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D

0.96 J

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Solution

The correct option is D

0.96 J


v1=42+162=272 and v2=82+202=464
Work done = Change in kinetic energy =12m[v22v21]=12×0.01[464272]=0.96J.


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