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Question

A lift in which a man is standing, is moving upwards with a constant speed of 10 m s−1 . The man drops a coin from a height of 4.9 m. If g=9.8 m s−2, the coin reaches the floor of the lift after a time

A
2 s
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B
1 s
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C
12 s
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D
12 s
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Solution

The correct option is B 1 s
Let us solve the problem in terms of relative initial velocity, relative acceleration and relative displacement of the coin with respect to the floor of the lift.
urel=1010=0 ms1, arel=9.8 ms2
Srel=4.9 m
Using second equation of motion, we get
Srel=urelt+12arelt2
4.9=0×t+12×9.8×t2
or 4.9t2=4.9 or t=1 s

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