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Question

A force F=k(y^i+x^j) where k is a positive constant acts on a particle moving in the xy-plane. Starting from the origin, the particle is taken along the positive x-axis to the point (a,0) and then parallel to the y-axis to the point (a,a). The total work done by the force F on the particle is

A
2ka2
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B
2ka2
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C
ka
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D
ka2
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Solution

The correct option is D ka2
Given F=k(y^i+x^j),(k>0)
It is given that, particle is taken along x-axis from origin to the point (a,0) and then parallel to the y-axis upto (a,a).


Work done along OA: x changes from 0 to a, y=0
Since F is variable,
Work done (WOA)=F.ds
=x2x1Fxdx+y2y1Fydydy=0W=x2x1kydx=0(y=0)WOA=0

Work done along AB: x=a, y changes from 0 to a.
WAB=x2x1Fxdx+y2y1Fydyx is constant,dx=0WAB=y2y1Fydy=a0kxdy
=kaa0dy=ka2
(x=a)

Total work done= work done along OA + work done along AB
=0+(ka2)
=ka2

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