A body is projected vertically upwards wth a velocity `u=5m//s`. After time `t` another body is projected vertically upward from the same point with a velocity `v=3m//s`. If they meet in minimum time duration measured from the projection of first body, then `t=k/g` sec find `k` (where `g` is gravitatio acceleration).

A body is projected vertically upwards wth a velocity `u=5m//s`. After

1.	A body is projected vertically upwards wth a velocity `u=5m//s`. After time `t` another body is projected vertically upward from the same point with a velocity `v=3m//s`. If they meet in minimum time duration measured from the projection of first body, then `t=k/g` sec find `k` (where `g` is gravitatio acceleration).
Answer» Correct Answer - 6 If they meet a height `h` after time `T` of the projection of the second. Then `h=u(T)-1/2g(T)^(2)=v(T-t)-1/2 g (T-t)^(2)`…….(i) `T=(5t^(2)+3t)/(10t-2)` For minimum `T, (dT)/(dt)=0` `50t^(2)-20t-6=0` `impliest=0.6=6/g`

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