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xarmenx
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I am having a problem solving this:
A ball is thrown straight up from the edge of a 20m tall building (ignore air resistance). One second later a second ball is thrown. What must be the initial velocity of the second ball in order for both of them to hit the ground at the same time.
Knowns:
Ball 1
x=20m
v0=0m/s
a=g (I am using 9.8m/s^2)
t-down=2.02s (x=vt+0.5at^2, 20=0t+0.5(9.8)t^2)
Ball 2
x=20m
v0 is the unknown, t is also unkown
a=g
I don't know how to calculate t-up (ball was thrown up originally) thus I don't know the total time.
The answer in the book is 8.18m/s and t is 1.55s. Any help would be appreciated as to how to obtain those answers.
Using the displacement formula:
x=x0+v0+0.5at^2 I can calculate T-Down for ball #1 which is 2.02s (20=0+0+4.9t^2)
I thought maybe to calculate time down for ball #2 I can subtract 1 second from 2.02s(ball 1 t down) which is 1.02s.
Then substitute that into 20=v0(1.02)+4.9(1.02^2) = 14.6m which is not the correct answer. I assume the error is due to me missing t-up completely.
I also tried solving the equations simoltaneously since they are equal but it seems to make little sense when I do (and I also have 2 unknown on 1 side):
20=v0t+4.9at^2, v0t+4.9at^2-20=0
20=4.9at^2, 4.9at^2-20=0
V0t+4.9at^2-20=4.9at^2-20 (the -20 just cancels and the result is v0t equals 0.
A ball is thrown straight up from the edge of a 20m tall building (ignore air resistance). One second later a second ball is thrown. What must be the initial velocity of the second ball in order for both of them to hit the ground at the same time.
Knowns:
Ball 1
x=20m
v0=0m/s
a=g (I am using 9.8m/s^2)
t-down=2.02s (x=vt+0.5at^2, 20=0t+0.5(9.8)t^2)
Ball 2
x=20m
v0 is the unknown, t is also unkown
a=g
I don't know how to calculate t-up (ball was thrown up originally) thus I don't know the total time.
The answer in the book is 8.18m/s and t is 1.55s. Any help would be appreciated as to how to obtain those answers.
Using the displacement formula:
x=x0+v0+0.5at^2 I can calculate T-Down for ball #1 which is 2.02s (20=0+0+4.9t^2)
I thought maybe to calculate time down for ball #2 I can subtract 1 second from 2.02s(ball 1 t down) which is 1.02s.
Then substitute that into 20=v0(1.02)+4.9(1.02^2) = 14.6m which is not the correct answer. I assume the error is due to me missing t-up completely.
I also tried solving the equations simoltaneously since they are equal but it seems to make little sense when I do (and I also have 2 unknown on 1 side):
20=v0t+4.9at^2, v0t+4.9at^2-20=0
20=4.9at^2, 4.9at^2-20=0
V0t+4.9at^2-20=4.9at^2-20 (the -20 just cancels and the result is v0t equals 0.
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