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Question

At t=0 a projectile is fired from a point O (taken as origin) on the ground with a speed of 50 m/s at an angle of 53 with the horizontal. It just passes two points A and B each at height 75 m above the horizontal as shown.

The horizontal separation between the points A and B is
(Take g=10 m/s2)

A
30 m
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B
60 m
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C
90 m
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D
120 m
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Solution

The correct option is B 60 m

Here, uy=usin53=50×45=40 m/s

By using third equation of motion v2y=u2y+2ayh

Here uy=40 m/s,ay=g and h=75 m

v2y=u2y2g(75)

v2y=4022(10)(75)

v2y=16001500

vy=±10 m/s

During upward journey, using

vy=uy+ayt

vy=uyg(t1)

10=40gt1

t1=3 s

During downward journey, using

vy=uy+ayt

vy=uygt2

10=40gt2

t2=5 s

Δt=53

Δt=2 s

AB=ux×Δt=ucosθΔt=50×35×2=60 m

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