Earth’s magnetic field at the given place, H = 0.36 G
The magnetic field at a distance d, on the axis of the magnet is given as:
\(B_1\) = \(\frac{\mu_0}{4\pi}\frac{2M}{d^3}\)= H …(I)
Where,
\(\mu_0\) = Permeability of free space
M = Magnetic moment
The magnetic field at the same distance d, on the equatorial line of the magnet is given as:
\(B_2\) = \(\frac{\mu_0M}{4\pi d^3}\) = \(\frac{H}{2}\) [Using equation (i)]
Total magnetic field, \(B\) = \(B_1+B_2\)
=\(H+\frac{H}{2}\)
= 0.36+0.18=0.54 G
Hence, the magnetic field is 0.54 G in the direction of earth’s magnetic field.
A current-carrying coil is placed in an external uniform magnetic field. The coil is free to turn in the magnetic field. What is the net force acting on the coil? Obtain the orientation of the coil in stable equilibrium. Show that in this orientation the flux of the total field (field produced by the loop + external field) through the coil is maximum.
If \(\begin{vmatrix} 2x & 3 \\ x & -8 \\ \end{vmatrix} = 0\), then the value of \(x\) is:
Magnets are used in many devices like electric bells, telephones, radio, loudspeakers, motors, fans, screwdrivers, lifting heavy iron loads, super-fast trains, especially in foreign countries, refrigerators, etc.
Magnetite is the world’s first magnet. This is also called a natural magnet. Though magnets occur naturally, we can also impart magnetic properties to a substance. It would be an artificial magnet in that case.
Read More: Magnetism and Matter