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Question

A man is pulling a block resting on the ground by applying force F=(20t+40) N as shown in the figure. If the pulley is frictionless and mass of the block is 4 kg, find out the power delivered by the force, 3 seconds after the man starts pulling the block. (Take g=10 m/s2)


A
2250 J/s
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B
5250 J/s
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C
3000 J/s
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D
1250 J/s
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Solution

The correct option is A 2250 J/s
Tension in the string = Applied force (F)
Given,
F=20t+40 N
Total force on the block =Fmg
ma=20t+40mg
4a=20t+404×10
4a=20t
a=5t (acceleration of the block)
But a=dvdt
5t=dvdt

Integrating on both sides:
v0dv=305t dt
v=5t2230
v=2.5×9=22.5 m/s

Force|t=3 s=20×3+40=100 N
Therefore, Power at t=3 s
=F.v=100×22.5=2250 J/s

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