Answer:
The ball is dropped at a height of 9.71 m above the top of the window.
Explanation:
Given:
Now using equation of motion in one dimension we have
[tex]s=ut+\dfrac{at^2}{2}[/tex]
Let u be the velocity of the ball when it reaches the top of the window
then
[tex]1.5=0.15u+\dfrac{9.8\times0.15^2}{2}\\u=3.96\ \rm m/s\\[/tex]
Now u is the final velocity of the ball with respect to the top of the building
so let t be the time taken for it to reach the top of the window with this velocity
[tex]3.96=gt\\t=0.4\ \rm s\\[/tex]
Let h be the height above the top of the window
[tex]h=\dfrac{gt^2}{2}\\\\h=\dfrac{9.8\times 0.4^2}{2}\\h=9.71\ \rm m[/tex]
