A body is dropped from a height of `40 m`. After it crosses half distance, the acceleration due to gravity ceases to act. The body will hit ground with velocity `("Take" g = 10 m//s^2)` :A. `20 m//s`B. `10 m//s`C. `2 m//s`D. `15 m//s`

A body is dropped from a height of `40 m`. After it crosses half dista

1.	A body is dropped from a height of `40 m`. After it crosses half distance, the acceleration due to gravity ceases to act. The body will hit ground with velocity `("Take" g = 10 m//s^2)` :A. `20 m//s`B. `10 m//s`C. `2 m//s`D. `15 m//s`
Answer» Correct Answer - A Suppose `v` be the velocity of the body after falling through half the distance. Then `s =(40)/(2) = 20 m, u = 0 and g = 10 m//s^2` `v^2 = u^2 + 2gh = 0^2 + 2 xx 10 xx 20` `rArr v = 20 m//s`. When the acceleration due to gravity ceases to act, the body travels with the uniform velocity of `20 m//s`. So it hits the ground with velocity `20 m//s`.

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A body is dropped from a height of `40 m`. After it crosses half distance, the acceleration due to gravity ceases to act. The body will hit ground with velocity `("Take" g = 10 m//s^2)` :A. `20 m//s`B. `10 m//s`C. `2 m//s`D. `15 m//s`

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