In the circuit diagram show, `X_(C)=100Omega, X_(L)=200Omega,& R=100Omega`

In the circuit shown in fig. X_(C ) = 100 Omega,(X_L)=200 Omega and R=100 Omega . The effective current through the source is

In a series A.C. circuit , R=100Omega , X_(L)=300Omega and X_(C )=200Omega . The phase difference between the applied e.m.f. and the current will be

In a series L-C-R circuit X_(L)350 Omega, X_(C)=200 Omega and R = 150 Omega .

In the circuit given E = 6.0 volt, R_(1) = 100Omega, R_(2) = R_(3)=50Omega and R_(4)=75Omega . The equivalent resistance of the circuit, in ohms is

A series LCR arrangement with X_(L)=80 Omega, X_(c) =50Omega, R=40 Omega is applied across a.c. source of 200 V. Choose the correct options.

200 V ac source is fed to series LCR circuit having X_(L)=50 Omega, X_(C )=50 Omega and R = 25 Omega . Potential drop across the inductor is

In an L.C.R series circuit R = 1Omega, X_(L) = 1000Omega" and "X_(C) = 1000Omega . A source of 100 m.volt is connected in the circuit the current in the circuit is

In a series R, L, C circuit X_(L)=10Omega, X_(c) = 4omega and R = 6Omega . Find the power factor of the circuit

In an AC series circuit, R = 10 Omega, X_L=20Omega and XC=10Omega .Then, choose the correct options