Two coils of self inductance `L_(1)` and `L_(2)` are connected in parallel and then connected to a cell of emf `epsilon` and internal resistance - R. Find the steady state current in the coils.

Two coils of self inductance L_(1) and L_(2) are connected in parallel and then connected to a call of emf epsilon and internal resistance - R. Find the steady state current in the coils.

In the circuit shown in Fig. emf E , a resistance R , and coil inductances L_(1) and L_(2) are known. The internal resistance of the source and the coil resistances are neglible. Find the steady-state currents in the coils after the swich Sw was shorted.

Two coils have a combined resistance of 9 Omega when connected in series and 2 Omega when connected in parallel. Find the resistance of each coil.

Two coils of self-inductance L_(1) and L_(2) are placed closed to each other so that total flux in one coil is completely linked with other. If M is mutual inductance between them, then

Two inductor coils of self inductance 3H and 6H respectively are connected with a resistance 10Omega and battery 10 V as shown in figure.The ratio of total energy stored at steady state in the inductors to that of heat developed in resistance in 10 seconds at the steady state is (neglect mutual inductance between L_(1) and L_(2) ):

A solenoid of inductance L with resistance r is connected in parallel to a resistance R . A battery of emf E and of negligible internal resistance is connected across the parallel combination as shown in the figure. At time t = 0 , switch S is opened, calculate (a) current through the solenoid after the switch is opened. (b) amount of heat generated in the solenoid.

A uniform wound solenoid coil of self inductance 1.8 xx 10^(-4) H and resistance ohm is broken into two identical coils. These indentical coils are connected in parallel across a 12 V battery of negligible resistance. Calculate the steady state current through the battery and time constant of the circuit.