The electric charge in uniform motion produces :
1. | An electric field only |
2. | A magnetic field only |
3. | Both electric and magnetic field |
4. | Neither electric nor magnetic field |
An infinitely long straight conductor is bent into the shape as shown in the figure.
It carries a current of i amperes and the radius of the circular loop is r metres. What will be the magnetic induction at its centre?
1. μ04π2ir(π+1)
2. μ04π2ir(π−1)
3. zero
4. Infinite
A current i ampere flows in a circular arc of wire whose radius is R, which subtend an angle 3π2 radian at its centre. The magnetic induction B at the centre is:
1. μ0iR
2. μ0i2R
3. 2μ0iR
4. 3μ0i8R
A straight section PQ of a circuit lies along the X-axis from x=-a2 to x= a2 and carries a steady current i. The magnetic field due to the section PQ at a point X = + a will be:
1. Proportional to a 2. Proportional to a2
3. Proportional to 1a 4. Zero
1. | 3.33×10−9 Tesla |
2. | 1.11×10−4 Tesla |
3. | 3×10−3 Tesla |
4. | 9×10−2 Tesla |
1. | At a distance d2 from any of the wires in any plane. |
2. | At a distance d3 from any of the wires in the horizontal plane. |
3. | Anywhere on the circumference of a vertical circle of radius d and centre halfway between the wires. |
4. | At points halfway between the wires in the horizontal plane. |
A circular coil of radius R carries an electric current. The magnetic field due to the coil at a point on the axis of the coil located at a distance r from the centre of the coil, such that r >> R, varies as
1. 1r
2. 1r3/2
3. 1r2
4. 1r3
The magnetic induction due to an infinitely long straight wire carrying a current i at a distance r from the wire is given by:
1. B=μ04π2ir
2. B=μ04πr2i
3. B=4πμ02ir
4. B=4πμ0r2i
The magnetic induction at the centre O in the figure shown is:
1. μ0i4(1R1-1R2) 2. μ0i4(1R1+1R2)
3. μ0i 4(R1-R2) 4. μ0i4(R1+R2)
In the figure shown, the magnetic induction at the centre of the arc due to the current in portion AB will be
1. μ0ir 3. μ0i4r
2. μ0i2r 4. Zero