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III. Long Answer Questions · Q1

Q.Establish the fact that the relative motion between the coil and the magnet induces an emf in the coil of a closed circuit.

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✓ Free question

Step 1. Consider a coil C connected to a galvanometer G, with a bar magnet nearby. With the magnet and coil both at rest, no deflection is observed -- no current flows.

Step 2. When the magnet's north pole is pushed towards the stationary coil, the galvanometer gives a momentary deflection, showing a transient current is induced -- purely because the magnet is now MOVING relative to the coil.

Step 3. Holding the magnet stationary INSIDE the coil (no relative motion, even though the magnet is close) gives zero deflection again, confirming that mere proximity is not enough -- only relative MOTION produces a current.

Step 4. Withdrawing the magnet gives a deflection in the OPPOSITE direction; moving the magnet FASTER gives a LARGER deflection; and the SAME results are obtained if the magnet is instead held still and the coil is moved towards or away from it.

Step 5. These observations establish that it is genuinely the RELATIVE motion between the coil and the magnet -- not which one is 'actually' moving -- that changes the magnetic flux linked with the coil, and by Faraday's law (ε=−d(NΦB)/dt\varepsilon=-d(N\Phi_B)/dt) this changing flux is exactly what induces the emf and drives the observed current.

✓Final answer

Faraday's coil-and-magnet experiment shows current flows only during relative motion between the coil and the magnet (never when either is at rest, even close together), proving that relative motion changes the linked flux, which by Faraday's law induces the emf that drives the observed current.

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