The effective capacity of the network between terminals AA and BB is:
1. | 6 μF6 μF | 2. | 20 μF20 μF |
3. | 3 μF3 μF | 4. | 10 μF10 μF |
1. | 4040 V | 2. | 1010 V |
3. | 3030 V | 4. | 2020 V |
1. | 6E,6C6E,6C | 2. | E,CE,C |
3. | E6,6CE6,6C | 4. | E,6CE,6C |
1. | U2U2 | 2. | U4U4 |
3. | 4U4U | 4. | 2U2U |
Energy per unit volume for a capacitor having area AA and separation dd kept at a potential difference VV is given by:
1. 12ε0V2d212ε0V2d2
2. 12V2ε0d212V2ε0d2
3. 12CV212CV2
4. Q22CQ22C
Some charge is being given to a conductor. Then it's potential:
1. | is maximum at the surface. |
2. | is maximum at the centre. |
3. | remains the same throughout the conductor. |
4. | is maximum somewhere between the surface and the centre. |
A capacitor of capacity C1C1 is charged up to VV volt and then connected to an uncharged capacitor C2C2. Then final P.D. across each will be:
1. C2VC1+C2C2VC1+C2
2. C1VC1+C2C1VC1+C2
3. (1+C2C1)(1+C2C1)
4. (1−C2C1)V(1−C2C1)V
If identical charges (−q)(−q) are placed at each corner of a cube of side bb then the electrical potential energy of charge (+q)(+q) which is placed at centre of the cube will be:
1. | −4√2q2πε0b−4√2q2πε0b | 2. | −8√2q2πε0b−8√2q2πε0b |
3. | −4q2√3πε0b−4q2√3πε0b | 4. | 8√2q24πε0b8√2q24πε0b |
Three capacitors each of capacity 44 µF are to be connected in such a way that the effective capacitance is 66 µF. This can be done by:
1. | connecting all of them in a series. |
2. | connecting them in parallel. |
3. | connecting two in series and one in parallel. |
4. | connecting two in parallel and one in series. |
A bullet of mass 2 gm2 gm has a charge of 2 μC.2 μC. Through what potential difference must it be accelerated, starting from rest, to acquire a speed of 10 m/s?10 m/s?
1. 50 kV50 kV
2. 5 V5 V
3. 50 V50 V
4. 5 kV5 kV