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Question

A block of mass m is placed at the bottom of a massless smooth wedge which is placed on a horizontal surface. When we push the wedge with a constant force, the block moves up the wedge. The work done by the external agent when the block has a speed v and has reached the top of the wedge is


A
12mv2+mgh
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B
12mv2mgh
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C
12mv2+mgh
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D
12mv2mgh
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Solution

The correct option is A 12mv2+mgh

Applying Work - Energy theorem for wedge-block system,
Wext+Wgravity=ΔKE
Wextmgh=ΔKE
This gives Wext=mgh+ΔKE(i)

ΔKE= Change in KE of the block
=12mv2(ii)
Using Eqs. (i) and (ii), we have Wext=12mv2+mgh

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