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Q.The magnetic dipole moment of a current carrying coil does not depend upon (A) number of turns of the coil. (B) cross-sectional area of the coil. (C) current flowing in the coil. (D) material of the turns of the coil.

CBSECBSE Class XII Board 2020MCQ· 1mImportance★★★★★
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The magnetic dipole moment μ=NIA\mu = NIA depends only on the current, number of turns, and loop area — not on what the wire is made of. The answer is (D).

The magnetic dipole moment is a measure of the strength of a current loop as a magnetic source. To understand what it depends on, we need to see where it comes from.

When a steady current flows through a closed loop, it creates a magnetic field pattern identical to that of a tiny bar magnet. The strength of this "equivalent magnet" is quantified by the magnetic dipole moment. For a single circular loop carrying current II and enclosing area AA, the dipole moment is:

μ=IA\mu = IA

This is a vector quantity, with direction given by the right-hand rule (curl your fingers along the current, thumb points along μ\mu).

Now let's examine each factor systematically:

  1. Number of turns (NN): If you stack NN identical loops carrying the same current, each contributes IAIA to the total moment. They add up because the magnetic fields from each turn reinforce one another. The total moment becomes:

μ=NIA\mu = NIA

So the dipole moment is directly proportional to the number of turns.

  1. Cross-sectional area (AA): A larger loop encloses more area, which means more magnetic flux threads through it and a stronger field is produced at distant points. The moment scales linearly with area — double the area, double the moment.

  2. Current (II): The magnetic field strength is directly proportional to the current flowing. More current means more moving charge per unit time, hence a stronger magnetic effect. The moment is directly proportional to II.

  3. Material of the wire: Here's the key insight. The magnetic dipole moment depends only on the current (charge flow rate), not on how that current is achieved. Whether the wire is copper, aluminum, silver, or any other conductor, as long as the same current II flows through the same geometry, the magnetic moment is identical. …

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