A solid sphere of mass 500 g radius 5 cm is rotated about one of its diameter with angular speed of 10 rad s - 1 . If the moment of inertia of the sphere about its tangent is x × 10 - 2 times its angu

Question

A solid sphere of mass 500 g radius 5 cm is rotated about one of its diameter with angular speed of 10 rad s - 1 . If the moment of inertia of the sphere about its tangent is x × 10 - 2 times its angular momentum about the diameter. Then the value of x will be

TestHub · Accepted Answer

The angular momentum about the diameter is

$L_{diameter} = \frac{2}{5} M R^{2} ω;$

The moment of inertia of a sphere is $I_{C M} = \frac{2}{5} M R^{2}$ . The moment of inertia about the tangent is

$I_{tangent} = I_{C M} + M R^{2} = \frac{2}{5} M R^{2} + M R^{2} = \frac{7}{5} M R^{2}$ .

It is given that $ω = 10 rad s^{- 1}$

Using the given relation between the moment of inertia and the angular momentum,

$\frac{7}{5} M R^{2} = x \times 10^{- 2} \times \frac{2}{5} M R^{2} ω \Rightarrow x = \frac{3.5 \times 10^{2}}{ω} = 3.5 \times 10 = 35$

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