A series LCR circuit containing a resistor of 120Ω has an angular resonant frequency 4×105rads−1. At resonance the voltages across resistor and inductor are 60 V and 40V respectively. The value of capacitance C is
A
132μF
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B
116μF
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C
32μF
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D
16μF
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Solution
The correct option is A132μF Voltage across a capacitor is given by VC=IrmsXC
Now the circuit is given at resonance So XL=XC and also VL=VC and the circuit will behave as purely resistive. ⇒Z=R ∴Irms=VrmsZ=VrmsR⇒Irms=60120=12A
Now putting the values VC=irms×1ωC⇒40=12×1ωC⇒C=132μF