Asked by Timoty
a stone is drop from the top of a building and at thesame time a second stone is thrown vertically upward from the botom of the building at a speed of 20m/s, they passed each other 3s later. find the hight of the building.
Answers
Answered by
DonHo
Newton's law of motion wrt to displacement:
d=v_i * t + 0.5*a*t^2
For the stone being dropped from building:
a=accerlation=gravity=9.81m/s^2
d=0+0.5*(9.81)*3^2
For the second stone being thrown up vertically:
d=20*3+0.5*(-9.81)*3^2
Since displacement/height is same at 3 seconds:
d-0.5*(9.81)*3^2 = 20*3+0.5*(-9.81)*3^2
Solve for d
d=v_i * t + 0.5*a*t^2
For the stone being dropped from building:
a=accerlation=gravity=9.81m/s^2
d=0+0.5*(9.81)*3^2
For the second stone being thrown up vertically:
d=20*3+0.5*(-9.81)*3^2
Since displacement/height is same at 3 seconds:
d-0.5*(9.81)*3^2 = 20*3+0.5*(-9.81)*3^2
Solve for d
Answered by
Damon
so the increase in speed of the dropped one cancels the slow down of the other and
height = initial speed up * time
= 20*3 = 60
height = initial speed up * time
= 20*3 = 60
There are no AI answers yet. The ability to request AI answers is coming soon!
Submit Your Answer
We prioritize human answers over AI answers.
If you are human, and you can answer this question, please submit your answer.