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Question

A bomber plane moves horizontally with a speed of 500 m/s and a bomb released from it, strikes the ground in 10 sec. Angle at which it strikes the ground will be (g=10 m/s2)

A
tan1(15)
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B
tan(15)
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C
tan1(1)
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D
tan1(5)
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Solution

The correct option is A tan1(15)
Horizontal component of velocity vx= 500 m/s and vertical components of velocity while striking the ground.
vy=0+10×10=100 m/s
Angle with which it strikes the ground.
θ=tan1(vyvx)=tan1(100500)=tan1(15)

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