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Calculate the rotational kinetic energy of a 9-kg motorcycle wheel if its angular velocity is 137 rad/s and its inner radius is 0.280 m and outer radius 0.330 m.

User Ahasbini
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1 Answer

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8 votes
Answer:

The rotational kinetic energy = 7909.73 Joules

Step-by-step explanation:

The mass of the motorcycle, m = 9kg

The angular velocity, w = 137 rad/s

Inner radius, r = 0.280 m

Outer radius, R = 0.330 m

The rotational kinetic energy is calculated as:


KE_{\text{rot}}=(m)/(4)(r^2+R^2)w^2

Substitute m = 9, r = 0.280, R = 0.330, and w = 137 rad/s into the formula above


\begin{gathered} KE_{\text{rot}}=(9)/(4)(0.280^2+0.33^2)137^2 \\ KE_{\text{rot}}=(9)/(4)(0.1873)(18769) \\ KE_{\text{rot}}=7909.73\text{ }Joules\text{ } \end{gathered}

User Hounded
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