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Speed at the maximum height of a project...

Speed at the maximum height of a projectile is half of its initial speed `u`. Its range on the horizontal plane is `:`

A

`(2u^(2))/(3g)`

B

`(sqrt(3)u^(2))/(2g)`

C

`(u^(2))/(3g)`

D

`(u^(2))/(2g)`

Text Solution

Verified by Experts

The correct Answer is:
B
At maximum height `v=u cos theta`
`v = u cos theta`
`(u)/(2) =v rArr (u)/(2) = u cos theta`
`rArr cos theta = (1)/(2) rArr theta = 60^(@)`
`R=(u^(2) sin 2 theta)/(g)=(u^(2)sin (120^(@)))/(g)=(sqrt(3)u^(2))/(2g)`.
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