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Oersted's Experiment

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Estimated time: 6 minutes
CISCE: Class 12

Introduction

In 1820, the Danish physicist Hans Christian Oersted made a groundbreaking discovery that unified two previously separate branches of physics — electricity and magnetism. His simple classroom demonstration showed that an electric current could influence a magnetic compass needle, laying the foundation for the field of electromagnetism.

CISCE: Class 12

Definition: Oersted's Experiment

Oersted's Experiment demonstrated that a current-carrying conductor produces a magnetic field around itself, proving that moving electric charges (current) generate magnetism.

CISCE: Class 12

Experimental Setup

Apparatus required:

  • A straight conducting wire AB
  • A battery
  • A key (switch)
  • A magnetic compass needle

Arrangement: The wire AB is connected in series with a battery and a key, and placed directly above a magnetic compass needle, parallel to it, in the north–south direction.

CISCE: Class 12

Procedure & Observations

Step Action Observation
1 Key open (no current flows) Needle remains aligned in N–S direction (undisturbed)
2 Key closed (current flows through wire) Needle deflects from its N–S position
3 Current direction reversed Direction of needle deflection reverses
4 Current magnitude increased Angle of deflection increases
5 Distance between wire and needle reduced Angle of deflection increases
CISCE: Class 12

Conclusion

A current-carrying conductor produces a magnetic field in the space surrounding it. This proved that moving charges (electric current) are a source of magnetism, unifying electricity and magnetism into a single branch of physics: electromagnetism.

This magnetic field, once established, can further exert a force on another moving charge or current-carrying conductor placed within it.
CISCE: Class 12

Real-Life Analogy

Think of the wire carrying current like a stone dropped into still water. Just as the stone creates ripples spreading outward in the water, a current-carrying wire creates magnetic field lines spreading outward in circular loops around it. A compass needle placed nearby is like a small boat that gets pushed around by these "ripples" (the magnetic field), which is why it deflects.

Shaalaa.com | Moving Charge and Magnetism part 2 (Oersted Experiment)

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