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Electromagnetic Induction: Experimental Demonstration

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Estimated time: 6 minutes
CISCE: Class 12

Introduction

In 1831, Faraday discovered that whenever the number of magnetic lines of force, or magnetic flux, passing through a circuit changes, an emf is produced in the circuit.

  • If the circuit is closed, a current flows through it.
  • The emf and current so produced are called induced emf and induced current.
  • Induced emf and induced current last only while the magnetic flux is changing.

Electromagnetic induction is the phenomenon of production of induced emf and induced current due to a change in magnetic flux through a circuit.

CISCE: Class 12

Magnetic Flux Can Be Changed

Magnetic flux through a circuit can be changed in the following ways:

  1. By moving a magnet relative to the circuit.
  2. By changing current in a neighbouring circuit.
  3. By changing current in the same circuit.
  4. By rotating a coil in a magnetic field.
CISCE: Class 12

Experiment 1: Magnet and Coil

Arrangement: A coil is connected to a galvanometer. A bar magnet is moved towards or away from the coil.

Observations

Action Observation in the galvanometer Meaning
North pole of magnet moves quickly towards the coil Momentary deflection Current is induced in the coil while the magnet is moving
Magnet is withdrawn from the coil Deflection in the opposite direction Induced current is now in the opposite direction
South pole faces the coil, and the experiment is repeated Deflections are reversed Direction of induced current depends on the pole facing the coil and direction of motion
Magnet moves faster Larger deflection Induced current becomes stronger
Magnet is stationary, and the coil moves towards/away from it Deflection occurs Relative motion between magnet and coil produces current

Key Inferences

  • The current in the coil is momentary.
  • Induced current is produced only while the magnetic flux is changing.
  • Withdrawing the magnet reverses the direction of induced current.
  • Reversing the magnet pole facing the coil reverses the galvanometer deflection.
  • Faster relative motion produces larger galvanometer deflection.
  • It does not matter whether the magnet moves or the coil moves; relative motion is important.

Important Point: If the magnet and coil have no relative motion, there is no change in flux and hence no induced current.

CISCE: Class 12

Experiment 2: Two Coils

Arrangement

  • A primary coil P is connected to a battery.
  • A secondary coil S is connected to a galvanometer.
  • The two coils are placed close to each other.

Observations

 
Change in primary coil Observation in secondary coil Direction of induced current
Current in the primary is started by closing key K Galvanometer deflects momentarily Opposite to current in primary
Current in primary is stopped Galvanometer again deflects momentarily Same direction as current in primary
Primary current is increased or decreased Induction effect is observed Depends on the change in primary current
Relative position of coils is changed Induction effect is observed Depends on the change in arrangement
Coils are wound on a piece of iron Induced current becomes stronger
Coils are wound on the same closed iron ring Induced current becomes still stronger

Key Inferences

  • Starting current in the primary coil produces a momentary induced current in the secondary coil.
  • Stopping current in the primary coil also produces a momentary induced current in the secondary coil.
  • The induced current when starting the primary current is in the opposite direction to that when stopping it.
  • Changing the primary current or the relative position of the coils produces induction.
  • An iron piece increases the strength of the induced current.
  • A closed iron ring further increases the induced current.
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