Let's consider the torque (also called the couple) acting on a bar magnet in a uniform magnetic field. The torque
Ï„ experienced by a bar magnet of magnetic moment
M in a uniform magnetic field
B, when held at an angle
θ to the field, is given by:
τ=MBsin‌θInitially, the bar magnet is held perpendicular to the magnetic field, so
θ=90∘. The torque in this position is:
τ0=MBsin‌90∘=MBTo halve the couple, the new torque
Ï„ should be:
τ=‌=‌Let the new angle be
θ. The torque at this angle will be:
τ=MBsin‌θ Setting this equal to half the initial torque, we get:
MBsin‌θ=‌Dividing both sides by
MB :
sin‌θ=‌The angle
θ for which
sin‌θ=‌ is:
θ=30∘Hence, the angle by which the magnet is to be rotated to halve the couple acting on it is:
Option B
30∘