The moment of inerta of a ring of mass `1kg` about an axis passing thr – InterviewSolution

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1.	The moment of inerta of a ring of mass `1kg` about an axis passing through its centre perpendicular to its surface is `4kgm^(2)`. Calculate the radius of the ring.
Answer» `I=MR^(2)`, `R=sqrt((I)/(M))=sqrt((4)/(1))=2m`

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