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Question

A 50 kg block slides down an incline with an angle of incline 45. The coefficient of friction between the block and the incline is 0.3. A worker applies a force on the block, so that it slides down the incline of length 2 m with a constant velocity. What is the work done by the worker on the block?

A
495.2 J
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B
495.2 J
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C
525.7 J
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D
525.7 J
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Solution

The correct option is B 495.2 J

From the FBD,
N=mgcosθ
and frictional force,
Ff=μmgcosθ=0.3×50×10×cos45
Ff=106 N
The force that causes the block to slide down the incline
Fi=mgsinθ=50×10×sin45
Fi=353.6 N
Net force on the block,
FiFf=353.6106=247.6 N

The worker counters this force so that there is no net acceleration.
The work done by the worker on the block
W=F×d
W=247.6×2=495.2 J
(sign is negative because force applied by worker is opposite to displacement of block)

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