A uniform square plate of side a is hinged at one of its corners as shown. It is suspended such that it can rotate about horizontal axis. Find out its time period for small oscillations about its equilibrium position.
A
2π√√2a6g
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B
2π√2√2a3g
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C
2π√2ag
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D
2π√a2g
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Solution
The correct option is B2π√2√2a3g
Moment of inertia of a square plate about one of its corners and perpendicular to its plane, I=ICm+md2 I=ma26+m(a√2)2 Time period of the physical pendulum is T=2π√Imgd T=2π
⎷ma26+m(a√2)2mg.a√2 T=2π
⎷(a6+a2).√2g=2π√2√2a3g