At the magnetic equator, the angle of dip is

1. 0°

2. 90°

3. 45°

4. 135°

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The bar magnet \(A\) of magnetic moment \(M_A\) is found to oscillate at a frequency twice that of magnet \(B\) of magnetic moment \(M_B\) and the same moment of inertia when placed in a vibration magnetometer. We may say that:

1. \(M_B=8M_A\) 2. \(M_A= 4M_B\)
3. \(M_A=8M_B\) 4. \(M_A=2M_B\)
Subtopic:  Analogy between Electrostatics & Magnetostatics |
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Magnetic screening is:

1. Not possible

2. Possible using superconductors

3. Possible using the iron ring as cover

4. Both (2) & (3)

Subtopic:  Magnetic Materials |
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The apparent dip at a place is always greater than or equal to the value of true dip at that place. This is due to

1.  An increase in the apparent value of BV

2. A decrease in the apparent value of BH

3. An increase in the apparent value of BH

4. Both (1) & (2)

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If a bar magnet is kept on a horizontal plane with N-pole of bar magnet facing geographic N-pole and S-pole of bar magnet facing geographic S-pole, then the number of neutral points is:

1. 0 2.
3. 2 4. Infinite
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The magnetization of a piece of iron or steel:

1. depends on the strength of the magnetizing field.
2. depends on external conditions such as temperature.
3. cannot be done beyond the saturation point.
4. all of these.

Subtopic:  Magnetization & Magnetic Intensity |
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A Gaussian surface is drawn enclosing the N-pole of a bar magnet. The net magnetic flux through the Gaussian surface will be:
(pole strength of N-pole is treated as positive and S-pole as negative)

   

1. positive.
2. negative.
3. positive or negative.
4. zero.

Subtopic:  Bar Magnet |
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A material when heated suddenly changes its magnetic property at a particular temperature and above this temperature, its susceptibility is found to be inversely proportional to the absolute temperature. The material may be:

1. Ferromagnetic

2. Diamagnetic

3. Paramagnetic

4. Ferromagnetic or Paramagnetic

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At angle cos-113 to the magnetic meridian, the apparent dip is 60°. The true dip at the place is :

1. 30°

2. 45°

3. 0°

4. 60°

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A long solenoid has 1500 turns per metre and an iron core of μr = 1100 is kept inside it. 2A current flows in the coil of the solenoid. If the core is heated beyond curie temperature, then:

1. The H and B fields in the solenoid reduce to zero.
2. The H and B fields in the solenoid remain unchanged.
3. The H field in the solenoid is nearly unchanged but B field decreases significantly.
4. The B field in the solenoid is nearly unchanged but the H field decreases significantly.
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