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Question

A body is projected from the top of a tower of height 32 m with a velocity of 20 m/s at an angle of 37 above the horizontal.Find the velocity with which it hits the ground.
(Take g=10 m/s2)

A
32.25 m/s
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B
16 m/s
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C
20 m/s
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D
28 m/s
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Solution

The correct option is A 32.25 m/s
Since the horizontal component of velocity does not change,
Final horizontal velocity = initial horizontal velocity
i.e vx=20cos37=16 m/s
Final vertical velocity is given by
v2y=u2y+2gsv2y=(20sin37)2+2×(10)×(32)v2y=144+640=784
vy=28 m/s (negative sign indicates downward direction)
Therefore, final velocity of the body
v=v2x+v2y=162+(28)2=1040=32.25 m/s

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