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If an electron of velocity \(2\hat i +3\hat j\) is subjected to a magnetic field of \(4\hat{k}\):
1. the speed will change.
2. the direction will change.
3. both (1) and (2)
4. none of the above

Subtopic:  Lorentz Force |
 60%
Level 2: 60%+
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The unit of reduction factor of the tangent galvanometer is 

1. Ampere

2. Gauss

3. Radian

4. None of these

Subtopic:  Moving Coil Galvanometer |
Level 3: 35%-60%
PMT - 1987
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A galvanometer of \(50~\Omega \) resistance has 25 divisions. A current of 4 × 10–4 A gives a deflection of one division. To convert this galvanometer into a voltmeter having a range of 25 V, it should be connected with a resistance of:

1. 2500 Ω as a shunt

2. 2450 Ω as a shunt

3. 2550 Ω in series

4. 2450 Ω in series

Subtopic:  Moving Coil Galvanometer |
 65%
Level 2: 60%+
PMT - 2004
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The dots in the figure depict a magnetic field that is perpendicular to the plane of the paper and emanates from it. The trajectory of a particle in the plane of the paper is depicted by the curve \(ABC\). What exactly is the particle?

                            

1. Proton. 2. Electron.
3. Neutron. 4. It cannot be predicted.
Subtopic:  Lorentz Force |
 60%
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A circular coil of wire of radius 'r' has 'n' turns and carries a current 'I'. The magnetic induction (B) at a point on the axis of the coil at a distance 3r from its center is :

1.  μ0In4r

2.  μ0In8r

3.  μ0In16r

4.  μ0In32r

Subtopic:  Magnetic Field due to various cases |
 62%
Level 2: 60%+
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A circular loop with a radius of \(20~\text{cm}\) is placed in a uniform magnetic field \(\mathrm B=2~\text{T}\) in the \(XY\) plane as shown in the figure. If the loop carries a current of \(i = 1~\text{A},\) then the magnitude of torque acting on the loop will be:
         
1. \(0.25~\text{N-m}\)
2. \(5.2~\text{N-m}\)
3. \(2.5~\text{N-m}\)
4. \(0.52~\text{N-m}\)
Subtopic:  Current Carrying Loop: Force & Torque |
 72%
Level 2: 60%+
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A closed-loop (of any shape) carrying current lies in the \(x\text-y\) plane. What happens when a uniform magnetic field \(B\) is present in the region such that the loop experiences zero force?
1. \(B\) acts along the \(x\text-\)axis
2. \(B\) acts along the \(y\text-\)axis
3. \(B\) acts along the \(z\text-\)axis
4. \(B\) can act along any of the above direction for the net force to be zero
Subtopic:  Current Carrying Loop: Force & Torque |
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An electron is traveling along the x-direction. It encounters a magnetic field in the y-direction. Its subsequent motion will be:

1.  Straight-line along the x-direction

2.  A circle in the xz-plane

3.  A circle in the yz-plane

4.  A circle in the xy-plane

 

Subtopic:  Lorentz Force |
 50%
Level 3: 35%-60%
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The figure shows a particle of charge q and mass m moving with velocity v along the x-axis enters a region of the uniform magnetic field. The minimum value of v so that the charge q is deflected by an angle 30° is

                                       

1.  2qBb-am

2.  qBb+a2m

3.  qBb-am

4.  qBb2m

Subtopic:  Lorentz Force |
 52%
Level 3: 35%-60%
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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


 

Subtopic:  Lorentz Force |
 79%
Level 2: 60%+
PMT - 1971
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