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Question

A block is gently placed on a conveyor belt moving horizontally at a constant speed. After t=4 s, the velocity of the block becomes equal to the velocity of the belt. If the coefficient of static friction between the block and the belt is μ=0.2, then what is the velocity of the conveyor belt ?

A
2 m/s
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B
4 m/s
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C
6 m/s
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D
8 m/s
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Solution

The correct option is D 8 m/s
Initially block is at rest while conveyer belt is moving with velocity v, due to relative motion between the block and belt, limiting friction will act on the block in the direction of motion of belt.
After time t when block reaches velocity equal to that of belt relative motion ceases.

f=μ×N
f=μ×mg ...(i)
applying newton's 2nd law on block
f=ma ...(ii)
μ×mg=ma
a=0.2×10=2 m/s2

Applying kinematic equation on the block (u=0), its velocity (v) at time t=4 s is given by :
v=u+at
v=0+2×4=8 m/s
At time t=4 s both block and belt have same velocity, hence velocity of conveyor belt is 8 m/s.

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