A circuit consists of a noniductive resistor of `50 Omega`, a coil of inductance `0.3 H` and resistance `2 Omega`, and a capacitor of `40 mu F` in series and is supplied with 200 volt rms at 50 cycles `//` sec. ThenA. the current lag or lead by an angle `15^(@) 5^(1)`B. the power in the circuit is `710.4 W`C. the power in th circuit is `640 W`D. the current lag or lead by an angle `12^(@) 5^(1)`

A circuit consists of a noniductive resistor of `50 Omega`, a coil of

1.	A circuit consists of a noniductive resistor of `50 Omega`, a coil of inductance `0.3 H` and resistance `2 Omega`, and a capacitor of `40 mu F` in series and is supplied with 200 volt rms at 50 cycles `//` sec. ThenA. the current lag or lead by an angle `15^(@) 5^(1)`B. the power in the circuit is `710.4 W`C. the power in th circuit is `640 W`D. the current lag or lead by an angle `12^(@) 5^(1)`
Answer» Correct Answer - A,B Total resistance `R = 50 + 2 = 52 Omega` `L = 0.3 H, C = 40 xx 10^(-6) F` `Z = sqrt(R^(2) + (X_(L) - X_(C ))^(2))` , `X_(L) = omega L = 2 xx pi xx 50 xx 0.3 = 30 pi` `X_(c ) = (1)/(omega C) = (1)/(2 xx pi xx 50 xx 40 xx 10^(-6)) = 250 pi` `X_(c ) gt X_(L)` so current leads the applied voltage. `Z = sqrt(R^(2) + (X_(L) - X_(C ))^(2)) = sqrt((52)^(2) + (30 pi - 250 pi)^(2))` `I_("rms") = (V_("rms"))/(2)` `P_(av) = E_("rms") I_("rms") cos phi = E_("rms") E_("rms")/(2) xx (R )/(2) = (E_("rms")^(2) R)/(2)`

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