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Q.In the figure shown below, a compass needle is placed under the wire. The wire is aligned in the South-North direction. When a current is made to flow through the wire from S to N, the needle will

(a) deflect to the right
(b) deflect to the left
(c) turn 180∘180^\circ
(d) remain unaffected
a circuit with a two-cell battery and a wire carrying current from S to N — Class 12 Physics magnetism question
Figure
Meghalaya MboseMBOSE Meghalaya Intermediate Board 2026MCQ· 1mImportance★★★★★
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By the right-hand (thumb) rule, the magnetic field produced by a current flowing from South to North, at a point directly below the wire, points towards the West — so the compass needle (normally pointing North) deflects towards the West, i.e. to the left, when viewed in the conventional map orientation (North at top, East to the right).

Setting up directions

Take the standard compass/map convention: North =+y^=+\hat y, East =+x^=+\hat x, Up (vertically, away from the ground) =+z^=+\hat z. This is a right-handed set: x^×y^=z^\hat x\times\hat y=\hat z.

The wire is aligned along the North–South line and carries current from S to N, i.e. the current direction is I^=+y^\hat I = +\hat y (Northward).

The compass needle sits directly below the wire — i.e. at a point displaced from the wire in the −z^-\hat z direction (vertically downward, towards the ground).

Applying the Biot–Savart / right-hand rule

For an infinite straight current-carrying wire, the magnetic field at a point is directed along I^×r^\hat I \times \hat r, where r^\hat r is the unit vector from the wire to the field point.

Here r^=−z^\hat r = -\hat z (point is directly below the wire), so:

B⃗ ∝ I^×r^=y^×(−z^)=−(y^×z^)=−x^\vec B \ \propto\ \hat I\times\hat r = \hat y\times(-\hat z) = -(\hat y\times\hat z) = -\hat x

Since +x^=+\hat x= East, −x^=-\hat x= West. So the magnetic field produced by the wire, at the point directly below it, points towards the West.

Effect on the compass needle

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