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GUJCET · Physics · Electromagnetic Induction
\(O\) is the centre of two coplanar concentric circular conductors, \(A\) and \(B\), of radii \(r\) and \(R\) respectively as shown in the fig. Here \(r \lll R\). The mutual inductance of the system of the conductors can be given by _________ .

- A \(\frac{\mu_0 \pi r}{2 R}\)
- B \(\frac{\mu_0 R ^2}{\pi r}\)
- C \(\frac{v_0 \pi R ^2}{2 r}\)
- D \(\frac{\mu_0 \pi r^2}{2 R }\)
Answer & Solution
Correct Answer
(D) \(\frac{\mu_0 \pi r^2}{2 R }\)
Step-by-step Solution
Detailed explanation
D
When we pass current I through loop of radii \(R\), magnetic field at centre
\(B_{\text {center }}=\frac{\mu_0 I}{2 R}\)
\(\therefore\) Flux associated with small loop.
\(\begin{array}{l}\phi= AB \\ \phi=\pi r^2 \times \frac{\mu_0 I }{2 R } \\ \phi=\frac{\mu_0 I \pi r^2}{2 R }\end{array}\)
Mutual inductance \(M=\frac{\phi}{1}\)
\(M=\frac{\mu_0 \pi r^2}{2 R}\)
When we pass current I through loop of radii \(R\), magnetic field at centre
\(B_{\text {center }}=\frac{\mu_0 I}{2 R}\)
\(\therefore\) Flux associated with small loop.
\(\begin{array}{l}\phi= AB \\ \phi=\pi r^2 \times \frac{\mu_0 I }{2 R } \\ \phi=\frac{\mu_0 I \pi r^2}{2 R }\end{array}\)
Mutual inductance \(M=\frac{\phi}{1}\)
\(M=\frac{\mu_0 \pi r^2}{2 R}\)
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