The circuit showm below contains two ideal diodes, each with a forward resistance of `50 Omega`. If the battery voltage is 6 V, the current through the `100 Omega` resistance ( in Amperes) is:

The circuit shown in figure contains two diodes each with a forward resistance of 50Ω and infinite reverse resistance.If the battery voltage is 6 v ,then the current through the 100Ω resistance is

The circuit shown in the figure contains two diodes each with a forward resistance of 30 Omega and with infinite backward resistance. If the battery is 3 V, the current through the 50 Omega resistance (in ampere) is

The circuit shown in figure (1) Contains two diodes each with a forward resistance of 50 ohm and with infinite reverse resistance. If the battery voltage is 6 V , the current through the 100 ohm resistance is. .

In the circuit, the current flowing through 10Omega resistance is

In the given circuit current flowing through 2 Omega resistance is

The circuit shown in the figure contains two diodes each with a forward resistance of 50Omega and with infinite backward resistance. If the batter of 6 V is connected in the circuit, then the current through the 100 Omega resistance is

In the circuit of adjoining figure the current through 12 Omega resister will be

Consider the junction diode is ideal. The value of current through the resistance of 200 Omega is

Consider the junction diode is ideal. The value of current through the resistance of 300 Omega is

Each of the resistors shown in figure has a resistances of 10(Omega) and each of the batteries has an emf of 10V.Find the currents through the resistors a and b in the two circuits.