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Two thin uniform circular rings each of radius 10 cm and mass 0.1 kg are arranged such that they have a common centre and their planes are perpendicular to each other. The moment of inertia of this system about an axis passing through their common centre and perpendicular to the plane of one of the rings in `kg-m^(2)` is

A

`1.5xx10^(-3)`

B

`5xx10^(-3)`

C

`1.5xx10^(-6)`

D

`18xx10^(-4)`

Text Solution

Verified by Experts

The correct Answer is:
A
Here, `m_(1)=m_(2)=0.1 kg, r_(1)=r_(2)=10cm=0.1m`
`and" "l=l_(1)+l_(2)=m_(1)r_(1)^(2)+(1)/(2)m_(2)r_(2)^(2)=(3)/(2)m_(1)r_(1)^(2)" "(because m_(1)=m_(2))`
`=(3)/(2)xx0.1(0.1)^(2)=1.5xx10^(-3)kg-m^(2)`
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