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Question

A particle projected from ground moves at an angle 45 with horizontal one second after projection and speed is minimum two seconds after the projection. The angle of projection of particle is
[Neglect the effect of air resistance]

A
tan1(3)
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B
tan1(2)
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C
tan1(2)
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D
tan1(4)
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Solution

The correct option is B tan1(2)
Let u be the initial velocity of the projectile and suppose it makes an angle α with the horizontal.
Let v be the velocity of the projectile when it makes an angle of 45 with the horizontal.
Vertical component of velocity at this point is given by
vy=uyg(1)......(i)
(by first equation of motion)
Horizontal component of velocity at this point is given by
vx=ux (Acceleration is zero along horizontal component) ......(ii)
Dividing (i) from (ii), we get
vyvx=tan 45=uygux...(iii)
Let T be the time of flight of the projectile
According to question.
T2=2 s
(Particle reaches maximum height in 2 s)
2u sin αg=4
u sin α=uy=2g...(iv)
Put (iv) in (iii), we get
1=2ggu cos α
u cos α=g......(v)
Dividing (iv) from (v), we get
tan α=2
α=tan12
Hence, the correct answer is option (b)

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