The area enclosed by hysteresis loop is a measure of :

1. Permeability

2. Susceptibility

3. Retentivity

4. Energy loss per cycle

 74%
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Susceptibility of a diamagnetic substance at \(300~\text{K}\) is \(-0.00002\). Its susceptibility at \(600~\text{K}\) is:
1. \(-0.00001\)
2. \(-0.00004\)
3. \(-0.00006\)
4. \(-0.00002\)
Subtopic:  Magnetic Materials |
 54%
From NCERT
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Line joining places of zero angle of dip on earth surface is called :

1. Isoclinic line

2. Aclinic line

3. Isogonic line

4. Agonic line

 60%
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When a dip circle is kept at a place, the angle of dip obtained is 45°. When the dip circle is rotated about its vertical axis by 90°, the angle of dip obtained is 60°. The true dip at that place is :

1. cot-1 23

2. cot-143

3. tan-123

4. tan-143

 54%
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The magnetic moment of a bar magnet shown in figure(i) is M.

If a hole is drilled through the magnet as shown in figure(ii), then the new magnetic moment of the magnet will be :

1. Equal to M

2. Less than M

3. More than M

4. Zero

Subtopic:  Bar Magnet |
 57%
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When a substance is kept in a magnetic field, it gets repelled. Which of the following represents its susceptibility?

1. -0.0004

2. 0.0004

3. 1.000

4. -1.000

Subtopic:  Magnetic Materials |
 80%
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The time period of vibration of a bar-magnet in a vibration magnetometer is \(T\). If the magnet is cut into \(n\) identical parts such that the length of each part is equal to the length of the original magnet, then the time period of vibration of one part in the vibration magnetometer is:
1. \(\frac{T}{n}\)
2. \(nT\)
3. \(n^2T\)
4. \(T\)

Subtopic:  Bar Magnet |
 53%
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Magnetic susceptibility of a substance at \(27^{\circ}~\mathrm{C}\) is \(-0.00025\). Its magnetic susceptibility at \(127^{\circ}~\mathrm{C}\) is:
1. \(-0.000125\)
2. \(-0.0005\)
3. \(-0.00025\)
4. \(-0.00001\)

Subtopic:  Magnetic Materials |
 76%
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Locus of all points having the same dip on the magnetic map of the earth is known as :

1. Isodynamic line

2. Isogonic line

3. Isothermal line

4. Isoclinic line

 56%
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Magnetic induction at an axial point of a short magnet at a distance \(r\) from the centre of dipole is \(\vec B\). Its value at the equatorial point of the short magnet at the same distance from the centre of dipole is:

1. \(-\vec B\) 2. \(\dfrac{\vec B}{2}\)
3. \(\vec B\) 4. \(\dfrac{-\vec B}{2}\)
Subtopic:  Analogy between Electrostatics & Magnetostatics |
 68%
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