a body is dropped from a tower of 100 m and another body ia thrown upwards with a velocity of 25m/s. on what point they meet
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let the ball dropped down is a and the ball thrown up is b. also the stone thrown upwards cover a distance of x and the other covers a distance of (100 –x).
For ball a
u=0
g=10m/s2
d=(100−x)
Using the equation
s=ut+21at2
100−x=5t2.........(1)
For ball b
d=x
g=−10m/s2
u=25m/s
s=ut+21at2
x=25t−5t2............(2)
Solving equation (1) and (2)
100=25t
t=4seconds
Put the value of t in equation (1)
x=100−80
x=20m
They will meet at distance of 80 m from the ground after t = 4 seconds
Step-by-step explanation:
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