Question

A closely wound solenoid of 2000 turns and area of cross-section 1.6 × 10^–4 m², carrying a current of 4.0 A, is suspended through its centre allowing it to turn in a horizontal plane.

1. What is the magnetic moment associated with the solenoid?
2. What is the force and torque on the solenoid if a uniform horizontal magnetic field of 7.5 × 10^–2 T is set up at an angle of 30° with the axis of the solenoid?

Answer 1

Number of turns on the solenoid, n = 2000

Area of cross-section of the solenoid, A = 1.6 × 10⁻⁴ m²

Current in the solenoid, I = 4 A

1. The magnetic moment along the axis of the solenoid is calculated as:
   M = nAI
   = 2000 × 1.6 × 10⁻⁴ × 4
   = 1.28 Am²
2. Magnetic field, B = 7.5 × 10⁻² T
   Angle between the magnetic field and the axis of the solenoid, θ = 30°
   Torque, τ = MB sin θ
   = 1.28 × 7.5 × 10⁻² × sin 30°
   = 4.8 × 10⁻² Nm
   Since the magnetic field is uniform, the force on the solenoid is zero.
   The torque on the solenoid is 4.8 × 10⁻² Nm.