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Question

A boy standing on a long railroad car throws a ball straight upwards. The car is moving on the horizontal road with an acceleration of 1 ms2 and the projection velocity in the vertical direction is 9.8 m/s. How far (in m) behind the boy will the ball fall? Take g=9.8ms2

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Solution

Let the velocity of the car be u when ball is thrown.
So, initial velocity of car = Horizontal velocity of ball.
In horizontal direction, distance travelled by ball SB=ut
Distance travelled by car is SC=ut+12at2, where t = time of flight of ball in the air

So, car has travelled extra distance of SCSB=12at2
t=2ug=2×9.89.8=2 s, and hence, SCSB=12×1×22=2 m
So, the ball will drop 2 m behind the boy

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