Power supplied to a particle of mass 2kg varies with time as P=3t22W, where t is in seconds. If velocity of particle at t=0 is v=0, the magnitude of velocity of particle at time t=2s will be
A
1m/s
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B
4m/s
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C
2m/s
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D
2√2m/s
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Solution
The correct option is C2m/s Total work W=∫Pdt W=2∫03t22dt W=[t32]20=4J
From work-energy theorem, Wnet=ΔKE=Kf−Ki 12m(v2f−v2i)=W 12m(v2−0)=4 12×2v2=4⇒v=2m/s