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Saturday 13 August 2011
Physics GRE - #12
A ball is dropped from a height h. As it bounces off the floor, its speed is 80% of what it was just before it hit the floor. The ball will then rise to a height of about:
0.94 h
0.80 h
0.75 h
0.64 h
0.50 h
Solution :
Conservation of energy tells us that $mgh = \frac{1}{2}mv^2$. Therefore, we know that $h\propto v^2$. Since $v_{new}=0.8v_{old}$, $h_{new} = (0.8)^2h_{old} = 0.64h$.
It's a simple problem, but it may just mess you up if you aren't careful.
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