In the figure shown below there are two semicircles of radius \(r_1\) and \(r_2\) in which a current \(i\) is flowing. The magnetic induction at the centre of \(O\) will be:


 

1. \(\dfrac{\mu_{0} i}{r} \left(r_{1} + r_{2}\right)\) 2. \(\dfrac{\mu_{0} i}{4} \left[\frac{r_{1} + r_{2}}{r_{1} r_{2}}\right]\)
3. \(\dfrac{\mu_{0} i}{4} \left(r_{1} - r_{2}\right)\) 4. \(\dfrac{\mu_{0} i}{4} \left[\frac{r_{2} - r_{1}}{r_{1} r_{2}}\right]\)

Subtopic:  Magnetic Field due to various cases |
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The direction of magnetic lines of forces close to a straight conductor carrying current will be:

1. along the length of the conductor.

2. radially outward.

3. circular in a plane perpendicular to the conductor.

4. helical.

Subtopic:  Magnetic Field due to various cases |
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A vertical wire kept in Z-X plane carries a current from Q to P (see figure). The magnetic field due to current-carrying wire will have the direction at the origin O along :

1. OX

2. OX'

3. OY

4. OY'


                                                                           

Subtopic:  Magnetic Field due to various cases |
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 The magnetic field at the centre of a coil of n turns, bent in the form of a square of side 2 l, carrying current i, is :

1.  2μ0niπl                               2.  2μ0ni2πl

3.  2μ0ni4πl                               4.  2μ0niπl

Subtopic:  Magnetic Field due to various cases |
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In a current-carrying long solenoid, the field produced does not depend upon:

1. Number of turns per unit length 2. Current flowing
3. Radius of the solenoid 4. All of the above

Subtopic:  Ampere Circuital Law |
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A circular coil A  has a radius \(R\) and the current flowing through it is \(I.\) Another circular coil B has a radius \(2R\) and if \(2I\) is the current flowing through it, then the magnetic fields at the centre of the circular coil are in the ratio of (i.e. BA to BB):
1. \(4:1\)                             
2. \(2:1\)
3. \(3:1\)                             
4. \(1:1\)

Subtopic:  Magnetic Field due to various cases |
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A straight wire of diameter 0.5 mm carrying a current of 1 A is replaced by another wire of 1 mm diameter carrying the same current. The strength of the magnetic field far away is :

1. Twice the earlier value

2. Half of the earlier value

3. Quarter of its earlier value

4. Unchanged

Subtopic:  Magnetic Field due to various cases |
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Which one of the following gives the value of the magnetic field according to Biot-Savart’s law?

1. \(\frac{{i} \Delta {l} \sin (\theta)}{{r}^2} \) 2. \(\frac{\mu_0}{4 \pi} \frac{i \Delta {l} \sin (\theta)}{r} \)
3. \(\frac{\mu_0}{4 \pi} \frac{{i} \Delta{l} \sin (\theta)}{{r}^2} \) 4. \(\frac{\mu_0}{4 \pi} {i} \Delta {l} \sin (\theta)\)
Subtopic:  Biot-Savart Law |
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A neutral point is obtained at the centre of a vertical circular coil carrying current. The angle between the plane of the coil and the magnetic meridian is :

1. 0                           2. 45°

3. 60°                       4. 90°

Subtopic:  Earth's Magnetism (OLD NCERT) |
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A wire carrying current i is shaped as shown. Section AB is a quarter circle of radius r. The magnetic field is directed :

                                                      
1. At an angle π/4 to the plane of the paper

2. Perpendicular to the plane of the paper and directed in to the paper

3. Along the bisector of the angle ACB towards AB

4. Along the bisector of the angle ACB away from AB

Subtopic:  Magnetic Field due to various cases |
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