The ceiling of a long hall is 25 m high. What is the maximum horizontal distance that a ball thrown with a speed of 40 m s ¯¹ can go without hitting the ceiling of the hall ?

Given: The velocity of the ball is 40  ms -1 and the height of ceiling is 25 m.

The maximum height reached by a body in projectile motion is given as,

h= u 2 sin 2 θ 2g

Where, initial velocity of ball is u and angle of projection of the ball is θ.

By substituting the given values in the above expression, we get

25= ( 40 ) 2 sin 2 θ 2×9.8 sin 2 θ= 25×2×9.8 ( 40 ) 2 =0.30625 sinθ= 0.30625

Again solving for θ, we get

θ= sin −1 ( 0.5534 ) =33.60°

The horizontal range is given as,

R= u 2 sin2θ g

By substituting the given values in the above formula, we get

R= ( 40 ) 2 sin( 2×33.6 ) 9.8 =150.5 m

Thus, the ball covers a horizontal distance of 150.5 m before hitting the ceiling.