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A basketball player throws a basketball m = 1 kg straight up with an initial speed of v0 = 5.5 m/s. The ball leaves his hand at shoulder height h0 = 2.15 m. Let gravitational potential energy be zero at ground level.Give the total mechanical energy of the ball E in terms of maximum height hm it reaches, the mass m, and the gravitational acceleration g. What is the height, hm in meters?

User Spydon
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1 Answer

12 votes
12 votes

Using conservation of energy:

Let:

E1 = Energy right before the ball leaves his hand

E2 = Energy when the ball is in the air


\begin{gathered} E1=E2 \\ (1)/(2)mv1^2+mgh1=(1)/(2)mv2^2+mgh2 \end{gathered}

Where:

h2 = Maximum height

Solve for h2:


\begin{gathered} v1^2+2gh1=v2^2+2gh2 \\ h2=(v1^2+2gh1-v2^2)/(2g) \\ so: \\ h2=(5.5^2+2(9.8)(2.15)-0)/(2(9.8)) \\ h2=(72.39)/(2(9.8)) \\ h2=3.6933 \end{gathered}

The maximum height will be:

3.6933m

User KakhkAtion
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