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A body is projected horizontally from the top of a tower with initial velocity `18 m s^-1`. It hits the ground at angle `45^@`. What is the vertical component of velocity when it strikes the ground ?

A

`9 m s^-1`

B

`9 sqrt(2) m s^-1`

C

`18 m s^-1`

D

`18 sqrt(2) m s^-1`

Text Solution

Verified by Experts

The correct Answer is:
C
( c) `v cos 45^@ = u = 18 ms^-1`
`rArr v = 18 sqrt(2) ms^-1`
Vertical component
`v sin 45^@ = 18 sqrt(2) xx (1)/(sqrt(2) = 18 ms^-1`.
.
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