Que. A metal plate weighing 200g is balanced in mid-air by throwing 40 balls per second vertically upwards from below. After collision,balls rebound with the same speed. What is the speed with which the balls strike the plate ? [Given mass of each ball = 200g and g = 10ms-2]
Solution with Explanation :-
Here we have,
Mass of plate(Mp) = 200g
Number of balls throwing per second(n) = 40
and mass of each ball(Mb) = 200g
First we convert the unit of g (acceleration due to gravity) from SI unit to CGS unit
g = 10ms-2 = 1000cms-2
To balance the plate in mid air, the force applied by 40 balls is equal to the weight (mg) of the plate.
Let initial velocity be u and final velocity be v
and it is given that after collision balls rebound with the same speed, therefore v = -u
Force applied by the 40 balls in 1 second is
F1 = Mb × n × (v-u).
= 200×40×(-u-u)
= 8000(-2u)
= -16000u
Where F1 is the force applied by the 40 balls
Mb is the mass of each ball and
n is the number of balls thrown per second
F2 = Mp × -g
= 200 × -1000
= -200000
Where Mp is the mass of plate
F1 = F2
= -16000u = -200000
= u = 200000/16000
= u = 12.5 cms-1
Thus the initial velocity of the ball is 12.5 cms-1
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Thanks for easy explaination of this Questions
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