Q.A loop carrying a current clockwise is placed in the – plane, in a uniform magnetic field directed along the -axis. The tendency of the loop will be to : (A) move along -axis (B) move along -axis (C) shrink (D) expand
You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
Start your 14-day free trial to unlock the full solution →In a uniform magnetic field a closed current loop feels zero net force, and with the loop's plane already perpendicular to the torque is zero too — so it neither translates nor rotates. But each current element feels a radial force , and for a clockwise current with along this force points radially inward on every element. The loop tends to shrink. The correct option is (C).
The key here is to look past the two "global" effects (net force and torque) — both of which vanish in this configuration — and examine the force on each individual element of the loop.
-
Set up the geometry. The loop lies in the – plane and the field is (along the -axis). The current flows clockwise as seen from the direction, so by the right-hand rule the loop's magnetic moment points along , anti-parallel to .
-
No translation. For any closed loop in a uniform field the net force is
because around a closed path. This immediately rules out options (A) and (B) — the loop cannot move along the - or -axis.
-
No rotation. The torque is . Here is anti-parallel to , so — the loop does not turn.
-
Force on each element — the deciding step. Take the element of the loop at the point . For a clockwise current (seen from ), the tangent there points along , so and
which points along — i.e. radially inward, toward the centre of the loop. By the symmetry of the circle the same is true at every point: each element is pushed straight toward the centre. …
Unlock everything free for 14 days
- Full step-by-step solutions
- Concept-first explanations
- Methods, shortcuts & mistakes
- PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.