A magnetic needle lying parallel to a magnetic field required W units of work to turn it through 60° . The torque required to maintain the needle in this position will be

Question

A magnetic needle lying parallel to a magnetic field required W units of work to turn it through 60° . The torque required to maintain the needle in this position will be (A) √3 W (B) W (C) √3(W/2) (D) 2W

Tardigrade Admin · Accepted Answer

Work done to rotate a magnetic needle from

θ_{1}

to

θ_{2}

is

W = MB (cos θ_{1} - cos θ_{2})

where,

M

is magnetic dipole moment and

B

is magnetic field.
So,

W = MB (cos 0^{\circ} - cos 6 0^{\circ})

W = MB (1 - \frac{1}{2}) = \frac{MB}{2}

\Rightarrow MB = 2 W

Restoring torque on the needle

τ = MB s in θ

\Rightarrow τ = MB s in 6 0^{\circ}

\Rightarrow τ = 2 W \times \frac{3}{2}

\Rightarrow τ = 3 W

Q. A magnetic needle lying parallel to a magnetic field required $W$ units of work to turn it through $6 0^{\circ}$ . The torque required to maintain the needle in this position will be

$3$ $W$

$W$

$3 \frac{W}{2}$

$2 W$

Q. A magnetic needle lying parallel to a magnetic field required W units of work to turn it through 60∘ . The torque required to maintain the needle in this position will be

3​ W

W

3​2W​

2W

Q. A magnetic needle lying parallel to a magnetic field required $W$ units of work to turn it through $6 0^{\circ}$ . The torque required to maintain the needle in this position will be

$3$ $W$

$W$

$3 \frac{W}{2}$

$2 W$