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A compass needle free to turn in a horiz...

A compass needle free to turn in a horizontal plane is placed at the centre of a circular coil of 30 turns and radius 12 cm. The coil is in a vertical plane making an angle of `45^@` with the magnetic meridian when the current in the coil is `0.35amp.`, the needle points west to east.
(a) Determine the horizontal component of earth's magnetic field at the location.
(b) The current in the coil is reversed and the coil is rotated about its vertical axis by an angle of `90^@` in the anticlockwise sense looking from above. Predict the direction of the needle. Take the magnetic declination at the places to be zero.

A

`3.9xx10^(-7)"tesla"`

B

`3.9xx10^(-5)"tesla"`

C

`8.0xx10^(-5)"tesla"`

D

`7.0xx10^(-7)"tesla"`

Text Solution

Verified by Experts

The correct Answer is:
B
`"Here", n=30r, r=12cm=12xx10^(-2)m`
`i=0.35A,H=?`
As it is clear from figure shown the needle can point west to east only when `H=B sin 45^(@)`
wherem B=magnetic field strength due to current in coil `=(mu_(0))/(4pi)=(2pi "ni")/(r )`
`therefore H=(mu_(0))/(4pi)(2pi "ni")/ sin 45^(@)`
`=10^(-7)xx(2pixx30xx0.35)/(12xx10^(-2).(1)/(sqrt2)`
`=2xx(22)/(7)xx(30xx35)/(12xxsqrt2)xx10^(-7)`
`=3.9xx10^(-5)"telss"`
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