A circuit draws a power of 550 watt from a source of 220 volt, `50 Hz`. The power factor of the circuit is 0.8 and the current lags in phase behind the potential difference. To make the power factor of the circuit as 1.0, The capacitance should be connected in series with it isA. `75 mu F`B. `60 mu F`C. `50 mu F`D. `65 mu F`

A circuit draws a power of 550 watt from a source of 220 volt, `50 Hz`

1.	A circuit draws a power of 550 watt from a source of 220 volt, `50 Hz`. The power factor of the circuit is 0.8 and the current lags in phase behind the potential difference. To make the power factor of the circuit as 1.0, The capacitance should be connected in series with it isA. `75 mu F`B. `60 mu F`C. `50 mu F`D. `65 mu F`
Answer» Correct Answer - A As the current lags behind ghe potentail difference, the circuit contains resistance and inducntace. Power, `P = V_("rms") xx i_("rms") xx cos phi` , Here, `i_("rms") = (V_("rms"))/(Z)`, where `Z = sqrt([(R^(2) + (omega L)^(2))])` `P = (V_("rms")^(2) xx cos phi)/(Z)` or `Z = (V_("rms")^(2) xx cos phi)/(P)` So, `Z = ((220)^(2) xx 0.8)/(550) = 70.8` ohm Now, power factor `cos phi = (R )/(Z)` or `R = Z cos phi` `:. R = 70.4 xx 0.8 = 56.32` ohm Further, `Z^(2) = R^(2) + (omega L)^(2)` or `(omega L) = sqrt((Z^(2) - R^(2)))` or `omega L = sqrt((70.4)^(2) - (56.32)^(2)) = 42.2` ohm When the capacitor is connected in the circuit, `Z = sqrt([R^(2) + (omega L = (1)/(omega C))^(2)])` and `cos phi = (R )/(sqrt([R^(2) + (omega L - (1)/(omega C))^(2)]))` When `cos phi = 1, omega L = (1)/(omega C)` `:. C = (1)/(omega (omega L)) = (1)/(2 pi f (omega L))` `= (1)/((2 xx 3.14 xx 50) xx (42.2)) = 75 xx 10^(-6) F = 75 mu F`

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