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Question

A stone is dropped from a building of height h and it reaches after t seconds on earth. From the same building if two stones are thrown (one upwards and other downwards) with the same velocity u and they reach the earth surface after t1 and t2 seconds respectively, then

A
t = t1 - t2
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B
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C
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D
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Solution

The correct option is C
if a stone is dropped from height h

then h=12g t2 ...(i)

if a stone is thrown upward with velocity u then

h=ut1+12g t21 ...(ii)

if a stone is thrown downward with velocity u then

h=ut2+12gt22 ...(iii)

From(i) (ii) and (iii) we get

ut1+12g t21=12gt2 ...(iv)

ut2+12gt22=12gt2 ...(v)

Dividing (iv) and (v) we get

ut1ut2=12g(t2t2!)12g(t2t22)

or t1t2=t2t21t2t22

By solving t=t1t2

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