The magnetic dipole moment of earth is `6*4xx10^(21)Am^2`. If we consider it to be due to a current loop wound around the magnetic equator of the earth, then what should be the magnitude of the current? Take earth to be a sphere of radius `6400km`.

If the earth's magnetic field has a magnitude 3.4 xx 10^(-5) T at the magnetic equator of the earth, what would be its value at the earth's goemagnetic poles?

The magnetic moment of a circular current loop is 2.3 xx10^(-5) Am^(2) . What is the magnitude of the magnetic field on the axis of the loop at a distance of 1 cm from the loop?

The earth's magnetic field may be considered to be due to a short magnet placed at the centre of the earth annd oriented along the magnetic south-north direction. The ratio of the magnitude of the magnetic field on the earth's magnetic equator to that at the magnetic poles is

The magnetic field at a point on magnetic equator is 3*1xx10^-5T . If radius of earth is taken as 6400km , what is magnetic moment of the assumed dipole at the centre of earth?

The magnetic moment of the assumed dipole at the earth's centre is 8.0 xx 10^22 A m^2 . Calculate the magnetic field B at the geomagnetic poles of the earth. Radius of the earth is 6400 km .

What is the linear velocity of a person at equator of the earth due to its spinning motion? (Radius of the earth =6400km )

Calculate rotational K.E. of earth about its own axis, taking it to be a sphere of mass 6 xx 10^(24) kg and radius 6400 km .

The surface density of charge on the earth's surface is 2.65xx10^(-9)C//m^(2) . If the radius of the earth is 6400 km then the charge carried by the earth is