A thin uniform circular ring is rolling ...

A thin uniform circular ring is rolling down an inclined plane of inclination `30^(@)` without slipping. Its linear acceleration along the inclined plane will be

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`a=(gsintheta)/(1+k^2/R^2)=gsin30^@=g/4` `[Ask^2/R^2=1 and theta=30^@]`.

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A thin uniform circular ring is rolling down an inclined plane of inclination `30^(@)` without slipping. Its linear acceleration along the inclined plane will be

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