A stone is dopped from the top of the tower of 200m high and at the same time another stone is projected vertically upward from the ground with a velocity of 50m/s.. find where and when the two stones will meet
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Since,S=ut+1/2 at^2.
In case of free fall S=ut+1/2gt^2 eqn…1
Two cases arises here,
Case:1- stone is dropped from the tower,
given
S1=200 meters , u=0
So that, S1=ut+1/2 at^2 since it's case of free fall
So, S=ut+1/2gt^2 => S=1/2gt^2 eqn..2
Case:2 stone projected upward
S2=50t-1/2 gt^2. eqn ..3
Total distance S=S1+S2
Or, 200=S1+S2
Or, 200=1/2 gt^2+50t-1/2gt^2
=> 200=50t=> t=4sec.
Put t=4 in eqn 2.
We have, S1=0+1/2gt^2 => 1/2×9.81×4^2= 78.48m.
And S2=50×4–1/2×9.81×4×4
=200–78.48=121.52m
Both stones meet from ground in air at the distance of 121.52m in 4s.
HOPE , IT HELPS ...
Since,S=ut+1/2 at^2.
In case of free fall S=ut+1/2gt^2 eqn…1
Two cases arises here,
Case:1- stone is dropped from the tower,
given
S1=200 meters , u=0
So that, S1=ut+1/2 at^2 since it's case of free fall
So, S=ut+1/2gt^2 => S=1/2gt^2 eqn..2
Case:2 stone projected upward
S2=50t-1/2 gt^2. eqn ..3
Total distance S=S1+S2
Or, 200=S1+S2
Or, 200=1/2 gt^2+50t-1/2gt^2
=> 200=50t=> t=4sec.
Put t=4 in eqn 2.
We have, S1=0+1/2gt^2 => 1/2×9.81×4^2= 78.48m.
And S2=50×4–1/2×9.81×4×4
=200–78.48=121.52m
Both stones meet from ground in air at the distance of 121.52m in 4s.
HOPE , IT HELPS ...
adityachintu0904:
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