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Question 48 of 48

Q.Define :

(i) Self inductance
(ii) Mutual inductance. A conducting loop of area 1m² is placed normal to a uniform magnetic field of 3 Wb/m². If the magnetic field is uniformly reduced to 1 Wb/m² in 0.5 second, calculate the induced e.m.f. produced in the coil.
Maharashtra MsbshseMaharashtra HSC (MSBSHSE) Board 2026Subjective· 4mImportance★★★★★
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Self- and mutual-inductance are defined via induced-emf relations; the numeric part uses ε=A dB/dt\varepsilon = A\,dB/dt for the flux change through a fixed-area loop.

  1. Self-inductance: Self-inductance is the property of a coil (or circuit) by virtue of which it opposes any change in the current flowing through itself, by inducing an emf in itself. If II is the current in the coil and ϕ\phi the flux linked with it, ϕ=LI\phi = LI, so the induced (back) emf is: ε=−LdIdt\varepsilon = -L\frac{dI}{dt} where LL is the coefficient of self-inductance, numerically equal to the flux linkage per unit current, or the emf induced per unit rate of change of current.
  2. Mutual inductance: Mutual inductance is the property of two coils placed near each other, by virtue of which a change of current in one coil (the primary) induces an emf in the other (neighbouring, secondary) coil, due to the changing flux linking it. If I1I_1 is the current in the primary and ϕ2\phi_2 the flux linked with the secondary, ϕ2=MI1\phi_2 = MI_1, so: ε2=−MdI1dt\varepsilon_2 = -M\frac{dI_1}{dt} where MM is the coefficient of mutual inductance between the two coils. …

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