An α- particle travels in a circular path of radius 0.45 m in a magnetic field B=1.2 Wb/m2 with a speed of 2.6×107 m/sec . The period of revolution of the α- particle is :

1.  1.1×10-5  sec          2.  1.1×10-6 sec

3.  1.1×10-7 sec            4.  1.1×10-8 sec

Subtopic:  Lorentz Force |
 70%
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A rectangular loop carrying a current i is situated near a long straight wire such that the wire is parallel to the one of the sides of the loop and is in the plane of the loop. If a steady current I is established in wire as shown in figure, the loop will

                                          

1. Rotate about an axis parallel to the wire

2. Move away from the wire or towards right

3. Move towards the wire

4. Remain stationary

Subtopic:  Current Carrying Loop: Force & Torque |
 73%
From NCERT
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To make the field radial in a moving coil galvanometer :

1. The number of turns in the coil is increased

2. Magnet is taken in the form of horse-shoe

3. Poles are cylindrically cut

4. The coil is wounded on the aluminum frame

Subtopic:  Moving Coil Galvanometer |
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A proton of mass 1.67×10-27kg and charge 1.6×10-19C is projected with a speed of 2×106m/s at an angle of 60° to the X-axis. If a uniform magnetic field of 0.104 Tesla is applied along Y-axis, the path of the proton is:

1. A circle of radius = 0.2 m and time period π×10-7s

2. A circle of radius = 0.1 m and time period 2π×10-7s 

3. A helix of radius = 0.1 m and time period 2π×10-7s

4. A helix of radius = 0.2 m and time period 4π×10-7s

Subtopic:  Lorentz Force |
 61%
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An electric field of 1500 V / m and a magnetic field of 0.40 weber / meter2 act on a moving electron. The minimum uniform speed along a straight line the electron could have is

1. 1.6×1015m/s                         

2. 6×10-16m/s

3. 3.75×103m/s                         

4. 3.75×102m/s

Subtopic:  Lorentz Force |
 82%
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A current-carrying wire is placed in a uniform magnetic field in the shape of the curve \(y= \alpha \sin \left({\pi x \over L}\right),~0 \le x \le2L.\) 
What will be the force acting on the wire?
                   

1. \(iBL \over \pi\) 2. \(iBL \pi\)
3. \(2iBL \) 4. zero
Subtopic:  Lorentz Force |
 70%
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 A long straight wire along the z-axis carries a current I in the negative z-direction. The magnetic field vector B at a point having coordinates (x, y) in the z = 0 plane is :

1. μ0I(yi^-xj^)2π(x2+y2)                 

2. μ0I(xi^+yj^)2π(x2+y2)

3. μ0I(xj^-yi^)2π(x2+y2)                 

4. μ0I(xi^-yj^)2π(x2+y2)

Subtopic:  Magnetic Field due to various cases |
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A particle of charge \(+q\) and mass \(m\) moving under the influence of a uniform electric field \(E\hat i\) and a uniform magnetic field \(\mathrm B\hat k\) follows a trajectory from \(P\) to \(Q\) as shown in the figure. The velocities at \(P\) and \(Q\) are \(v\hat i\) and \(-2v\hat j\) respectively. Which of the following statement(s) is/are correct?

       
1. \(E=\frac{3}{4} \frac{{mv}^2}{{qa}}\).
2. Rate of work done by electric field at \(P\) is \(\frac{3}{4} \frac{{mv}^3}{a}\).
3. Rate of work done by both fields at \(Q\) is zero.
4. All of the above.
Subtopic:  Lorentz Force |
 71%
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For a positively charged particle moving in a  x- plane initially along the x-axis, there is a sudden change in its path due to the presence of electric and/or magnetic fields beyond P. The curved path is shown in the x-y plane and is found to be non-circular. Which one of the following combinations is possible

1.  E=0; B=bi^+ck^                 

2.  E=ai^; B=ck^+ai^

3. E=0;B=cj^+bk^                   

4.  E=ai^;B=ck^+bj^

Subtopic:  Lorentz Force |
 55%
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A conducting loop carrying a current \(I\) is placed in a uniform magnetic field pointing into the plane of the paper as shown. The loop will tend to

                                    

 

1. Contract 
2. Expand
3. Move towards \(+ve~ X -axis \)
4. Move towards \(-ve~ X -axis \)

Subtopic:  Current Carrying Loop: Force & Torque |
 72%
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