The velocity at the maximum height of a projectile is √32 times its initial velocity of projection (u). Its range on the horizontal plane is
A
√3u22g
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B
3u22g
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C
3u2g
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D
u22g
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Solution
The correct option is A√3u22g As the vertical component of velocity becomes 0 at maximum height (H). Therefore, velocity at maximum height comprises only of horizontal component of velocity. ⇒vH=ucosθ According to question, ucosθ=√32u⇒θ=30∘R=u2sin2θg=u2sin60∘g =√3u22g