In the Wheatstone’s network given below
, `P = 10 Omega, Q = 20 Omega, R = 15 Omega, S = 30 Omega`. The current passing through the battery (of negligible internal resistance) is

In the Wheatstone's network given, P = 10 Omega, Q = 20 Omega, R = 15 Omega, S = 30 Omega .The current passing through the battery (of negligible internal resistance) is

In Wheatstone's network P = 2 Omega , Q = 2 Omega , R = 2 Omega and S = 3 Omega The resistance with which S is to shunted in order that the bridge may be balanced is

In a typical Wheatstone’s network the resistance in cyclic order are P = 10 ohm, Q = 5 ohm, S = 4 ohm and R = 4 ohm. For the bridge to balance

In a circuit if two resistors of 5 Omega and 10 Omega are connected in series, compare the current passing through the two resistors.

Given that R_1 = 2 Omega, R_2 = 3 Omega and R_3 = 6 Omega , combinations which will give an effective resistance of 4 Omega is

Three resistor 4 Omega , 6 Omega and 8 Omega , are combined in parallel.If the combination is connected to a battery of emf 25 V and negligible Internal resistance, then determine the current through each resistor and total current drawn from the battery.

Three resistors 2Omega, 4Omega and 5Omega are connected in parallel.If the combination is connected to a battery of emf 20 V and negligible internal resistance, determine the current through each resistor and the total current drawn from the battery.