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Question

A projectile is thrown with a speed of 100 m/s making an angle of 60 with the horizontal. Find the minimum time after which its inclination with the horizontal is 45.

A
5(31)
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B
5(21)
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C
5(13)
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D
5(12)
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Solution

The correct option is A 5(31)
Given, θ=60
u (initial velocity) = 100 m/s.
So, velocity in horizontal direction ux (along x) =100cos60
Velocity (initial) along vertical direction uy (along y) = 100sin60
Let after time t , the inclination of the particle with the horizontal is 45

And, at time t, velocity along x=vx and that along y=vy
So, vyvx=tan45
vx=vy
Now, since the horizontal component of velocity remains constant,
vx=ux=100cos60
and
vy=uygt(where,vy=vx=100cos60)100cos60=100sin6010t100×12=100×3210t50=50310tt=5(31) s

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