A circular disc of the radius 0.2 m is placed in a uniform magnetic field of induction 1π(Wbm2) in such a way that its axis makes an angle of 60∘ with →B. The magnetic flux linked to the disc will be:
1. 0.02 Wb
2. 0.06 Wb
3. 0.08 Wb
4. 0.01 Wb
If a current is passed through a circular loop of radius R then magnetic flux through a coplanar square loop of side l as shown in the figure (l<<R) is:
1. μ0I2R2l
2. μ0Il22R
3. μ0IπR22l
4. μ0πR2Il
The radius of a loop as shown in the figure is 10 cm. If the magnetic field is uniform and has a value 10−2 T, then the flux through the loop will be:
1. 2π×10−2 Wb
2. 3π×10−4 Wb
3. 5π×10−5 Wb
4. 5π×10−4 Wb
The magnetic flux linked with a coil varies with time as ϕ=2t2−6t+5, where ϕ is in Weber and t is in seconds. The induced current is zero at:
1. | t=0 | 2. | t=1.5 s |
3. | t=3 s | 4. | t=5 s |
A coil having number of turns N and cross-sectional area A is rotated in a uniform magnetic field B with an angular velocity ω. The maximum value of the emf induced in it is:
1. NBAω
2. NBAω
3. NBAω2
4. NBAω2
The current in a coil varies with time t as I=3t2+2t. If the inductance of coil be 10 mH, the value of induced emf at t=2 s will be:
1. 0.14 V
2. 0.12 V
3. 0.11 V
4. 0.13 V
A bar magnet is released along the vertical axis of the conducting coil. The acceleration of the bar magnet is:
1. | greater than g. | 2. | less than g. |
3. | equal to g. | 4. | zero. |
A wire loop is rotated in a magnetic field. The frequency of change of direction of the induced e.m.f. is:
1. | Twice per revolution | 2. | Four times per revolution |
3. | Six times per revolution | 4. | Once per revolution |