JEE Mains · Physics · STD 11 - 6. system of particles and rotational motion
A circular disc of radius \(b\) has a hole of radius \(a\) at its centre (see figure). If the mass per unit area of the disc varies as \(\left( {\frac{{{\sigma _0}}}{r}} \right)\), then the radius of gyration of the disc about its axis passing through the centre is
- A \(\frac{{a + b}}{3}\)
- B \(\sqrt {\frac{{{a^2} + {b^2} + ab}}{3}} \)
- C \(\frac{{a + b}}{2}\)
- D \(\sqrt {\frac{{{a^2} + {b^2} + ab}}{2}} \)
Answer & Solution
Correct Answer
(B) \(\sqrt {\frac{{{a^2} + {b^2} + ab}}{3}} \)
Step-by-step Solution
Detailed explanation
\(dI = \left( {dm} \right){r^2}\) \( = \left( {\sigma dA} \right){r^2}\) \( = \left( {\frac{{{\sigma _0}}}{r}2\pi dr} \right){r^2} = \left( {{\sigma _0}2\pi 0{r^2}dr} \right)\) \(I = \int {DI = \int\limits_a^b {{\sigma _0}2\pi {r^2}dr} } \)…
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