A square shaped plane coil of area 100 cm^(2) turns a carries a steady current of 5 A . It is placed in a uniform magnetic field of 0.2 T acting perpendicular to the plane of the coil. Calculate the torque on the coil when its when makes an angle of 60^@ with the direction of the field. In which orinetation will the coil be in stable equilibrium?

A square shaped plane coil of area 100 cm^(2) turns a carries a steady

1.	A square shaped plane coil of area 100 cm^(2) turns a carries a steady current of 5 A . It is placed in a uniform magnetic field of 0.2 T acting perpendicular to the plane of the coil. Calculate the torque on the coil when its when makes an angle of 60^@ with the direction of the field. In which orinetation will the coil be in stable equilibrium?
Answer» Solution :Here area of coil `A = 100 cm^2 = 10^(-2) m^2, ` number of turns N = 200, current I = 5 A, MAGNETIC FIELD B = 0.2 T. As plane of coil makes an angle of `60^@` with the direction of the field hence angle between `vecA and VECB` is `theta = 90^@ - 60^@ = 30^@` `:.` Torque `tau = NA IB sin theta = 200 xx 10^(-2) xx 5 xx 0.2 xx sin 30^@ = 1 N-m` The coil will be in stable EQUILIBRIUM when plane of the coil is perpendicular to the direction of magnetic field B so that `vecA and vecB` are parallel and torque `tau = 0`.

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