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Question

A particle is projected at an angle of 60 above the horizontal with a speed of 10 m/s. After some time, the direction of its velocity makes an angle of 30 above the horizontal. The speed of the particle at this instant is

A
53 m/s
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B
53 m/s
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C
5 m/s
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D
103 m/s
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Solution

The correct option is D 103 m/s
Horizontal component of velocity of the particle initially (at θ1=60 ),
vH=ucosθ1vH=10×cos60=10×12vH=5 m/s
As the horizontal component of velocity remains constant throughout the projectile motion.
Let v be the velocity when the particle makes an angle of 30 with the horizontal.
So, vH=vcosθ2
v=vHcos30
=532
v=103 m/s

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