In the circuit shown in figure :
`R = 10 Omega , L = (sqrt(3))/(10) H, R_(2) = 20 Omega` and `C = (sqrt(3))/(2) mF`. Current in `L - R_(1)` circuit is `I_(1)` in `C - R_(1)` circuit is `I_(2)` and the main current is `I`

Phase difference between `I_(1)` and `I_(2)` is

In the circuit shown in figure : R = 10 Omega , L = (sqrt(3))/(10) H, R_(2) = 20 Omega and C = (sqrt(3))/(2) mF . Current in L - R_(1) circuit is I_(1) in C - R_(1) circuit is I_(2) and the main current is I At some instant current in L - R_(1) circuit is 10 A . At the same instant current in C - R_(2) branch will be

In the shown AC circuit phase different between current I_(1) and I_(2) is

In the circuit shown below E_(1) = 4.0 V, R_(1) = 2 Omega, E_(2) = 6.0 V, R_(2) = 4 Omega and R_(3) = 2 Omega . The current I_(1) is

In the circuit shown in figure ,find the ratio of currents i_(1)//i_(2).

In the circuit shown, the current I will be zero when R is

In the curcuit shown in figure R_1=R_2=R_3=10Omega . Find the currents through R_1 and R_2

In the circuit shown, the currents i_(1) and i_(2) are

In the circuit as shown in figure, the ratio of current i_1//i_2 is

In the circuit shown in figure, R(1) = 1Omega, R_(2) = 2Omega, C_(1) = 1 muF, C_(2) = 2 muF and E = 6 V . Calculate charge on each capacitor in steady state

In the value circuit, C=(sqrt(3))/(2)muF,R_2=20Omega, L=sqrt(3)/(10)H , and R_1=10Omega .Current in L-R_1 path is I_1 and in C-R_2 path it is I_2 . The voltage of A.C source is given by, V=200sqrt(2)sin(100t) volts. The phase difference between I_2 and I_1 is :