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A Rowland ring of mean radius \(15\) cm has \(3500\) turns of wire wound on a ferromagnetic core of relative permeability \(800.\) What is the magnetic field \(B\) in the core for a magnetizing current of \(1.2\) A?
1. \(3.27\) T
2. \(2.56\) T
3. \(1.05\) T
4. \(4.48\) T

Subtopic:  Magnetic Materials |
 50%
Level 3: 35%-60%
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Figure shows two small identical magnetic dipoles \(a\) and \(b\) of magnetic moments \(M\) each, placed at a separation \(2d\), with their axes perpendicular to each other. The magnetic field at the point \(P\) midway between the dipoles is:

         
 

1. \(\dfrac{2 \mu_{0} M}{4 \pi d^{3}}\) 2. \(\dfrac{\mu_{0} M}{4 \pi d^{3}}\)
3. zero 4. \(\dfrac{\sqrt{5}\mu_{0} M}{4\pi d^{3}}\)
Subtopic:  Bar Magnet |
 70%
Level 2: 60%+
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A closely wound solenoid of \(800\) turns and area of cross-section \(2.5 \times10^{-4}~\text{m}^2\) carries a current of \(3.0~\text{A}\). If the solenoid acts like a bar magnet, then what is its associated magnetic moment?
1. \(0.6~\text{J/T}\) 
2. \(0.07~\text{J/T}\) 
3. \(0.3~\text{J/T}\) 
4. \(0.8~\text{J/T}\) 

Subtopic:  Magnetic Moment |
 84%
Level 1: 80%+
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A bar magnet of length \(l\) and magnetic moment \(p_{m}\) is bent in the form of an arc as shown in the figure below. The new magnetic dipole moment will be:

1. \(p_{m}\) 2. \(\dfrac{3}{\pi }p_{m}\)
3. \(\dfrac{2}{\pi }p_{m}\) 4. \(\dfrac{1}{2 }p_{m}\)
Subtopic:  Bar Magnet |
 79%
Level 2: 60%+
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An iron rod of susceptibility \(599\) is subjected to a magnetizing field of \(1200~\text{A m}^{-1}.\) The permeability of the material of the rod is:
\((\mu_0 = 4 \pi\times 10^{-7}~\text{T mA}^{-1})\)
1. \(8.0\times 10^{-5}~\text{T mA}^{-1}\)
2. \(2.4\pi\times 10^{-5}~\text{T mA}^{-1}\)
3. \(2.4\pi\times 10^{-7}~\text{T mA}^{-1}\)
4. \(2.4\pi\times 10^{-4}~\text{T mA}^{-1}\)

Subtopic:  Magnetization & Magnetic Intensity |
 65%
Level 2: 60%+
NEET - 2020
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A magnetic needle suspended parallel to a magnetic field requires \(\sqrt{3}~\text{J}\) of work to turn it through \(60^\circ\). The torque needed to maintain the needle in this position will be:
1. \(3\) N-m
2. \(\sqrt{3} \) N-m
3. \(\frac32\) N-m
4. \(2\sqrt{3}\) N-m

Subtopic:  Analogy between Electrostatics & Magnetostatics |
 72%
Level 2: 60%+
AIPMT - 2012
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Choose the correct statement regarding magnetism.

1. Paramagnetic sample displays greater magnetization when cooled.
2. Diamagnetism is almost independent of temperature.
3. Ferromagnetic substances show hysteresis.
4. All of these.

Subtopic:  Magnetic Materials |
 91%
Level 1: 80%+
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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 |
 87%
Level 1: 80%+
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Due to a small magnet, the intensity at a distance \(x\) in the end-on position is \(9~\text{gauss}\). What will be the intensity at a distance \(\dfrac{x}{2}\) on equatorial position?
1. \(9~\text{gauss}\) 2. \(4~\text{gauss}\)
3. \(36~\text{gauss}\) 4. \(4.5~\text{gauss}\)
Subtopic:  Bar Magnet |
 74%
Level 2: 60%+
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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 |
 69%
Level 2: 60%+
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