a stone is allowed to fall from the top of a tower 100 M and at the same time another stone is projected vertically upward from the ground with a velocity of 25 metre per second calculate when and where to stone will meet
Answers
Height (h) = 100 m
So, x - x0 = u0t + 1/2 gt2
Initial velocity = 0
or, 100 - x = 0 +1/2 gt2 .....eq (1)
Distance covered by stone from ground
Where initial velocity (u0) = 25 m/s
x = u0t - 1/2 gt2
or, x =( 25 X t) - 1/2 gt2 .....eq (2)
Combine .....eq (1) and .....eq (2)
So, 100 = 25t
t = 4
therefore, x = 25 × 4 - ½ × 9.8 × 4² = 100 - 78.4 = 21.6 m
_/\_Hello mate__here is your answer--
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⚫Let the two stones meet after a time t.
CASE 1 :-When the stone dropped from the tower
u = 0 m/s
g = 9.8 ms−2
Let the displacement of the stone in time t from the top of the tower be s.
From the equation of motion,
s = ut + 1/2gt^2
⇒s = 0 × + 1/2× 9.8 ×t ^2
⇒ s = 4.9t^2 …………………… . (1)
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CASE 2 :--When the stone thrown upwards
u = 25 ms−1
g = −9.8 ms−2(upward direction)
Let the displacement of the stone from the ground in time t be '
Equation of motion,
s' = ut+ 1/2gt^2
⇒s′ = 25 × − 1/2× 9.8 × t^2
⇒s′ = 25 − 4.9t^2 …………………… . (2)
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Given that the total displacement is 100 m.
s′ + s = 100
⇒ 25 − 4.9t^2 + 4.9t^2 = 100
⇒ t =100 /25 = 4 s
The falling stone has covered a distance given by (1) as = 4.9 × 4^2 = 78.4 m
Therefore, the stones will meet after 4 s at a height (100 – 78.4) = 20.6 m from the ground.
I hope, this will help you.☺
Thank you______❤
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