MHT CET · Physics · Rotational Motion
Four particles each of mass ' m ' are lying symmetrically on the rim of disc of mass ' \(M\) ' and radius ' \(R\) '. Moment of inertia of the system about an axis passing through one of the particle and perpendicular to plane of disc is
- A \(16 \mathrm{MR}^2\)
- B \((3 \mathrm{M}+16 \mathrm{~m}) \frac{\mathrm{R}^2}{2}\)
- C \((3 M+12 m) \frac{R^2}{2}\)
- D zero
Answer & Solution
Correct Answer
(B) \((3 \mathrm{M}+16 \mathrm{~m}) \frac{\mathrm{R}^2}{2}\)
Step-by-step Solution
Detailed explanation
\(I_{\text{disc}} = \frac{1}{2}MR^2 + MR^2 = \frac{3}{2}MR^2\) \(I_{\text{particles}} = m(0)^2 + m(R\sqrt{2})^2 + m(2R)^2 + m(R\sqrt{2})^2\)
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