Q.Describe the ways in which Eddy currents are used to advantage.
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Start your 14-day free trial to unlock the full solution →The heating and opposing (braking) effects of eddy currents, though wasteful in transformer cores, are put to deliberate use in several devices.
Background
When a changing magnetic flux links a bulk piece of conducting metal (not just a wire loop), it induces circulating ("eddy") currents within the body of the conductor, by Faraday's law. By Lenz's law, these currents oppose the change causing them, and dissipate energy as heat ( losses) within the metal. While this is undesirable in devices like transformer cores (where it is minimised by lamination), it is deliberately exploited in several useful applications:
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Electromagnetic damping (dead-beat galvanometers): In a moving-coil galvanometer, the coil is wound on a metallic (usually aluminium) frame. As the coil oscillates, eddy currents are induced in the metal frame; by Lenz's law they oppose the coil's motion, quickly damping out the oscillations so the pointer settles at its final (correct) reading almost immediately ("dead-beat") instead of swinging back and forth.
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Induction furnace: A metal to be melted is placed in a rapidly alternating magnetic field produced by a coil surrounding it. Strong eddy currents are induced in the metal, and the resulting heating is intense enough to melt the metal - used for melting metals to make alloys, without any physical contact/heating element.
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Induction motors: In an AC induction motor, eddy currents induced in the conducting rotor (by the rotating magnetic field of the stator) interact with the field to produce a torque, driving the rotor.
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