An inductor (L), a capacitor (C), and a resistor (R) is connected in parallel with each other in a circuit where,

L = 5.0 H, C = 80 μF = 80 x 10^–6F, R = 40Ω

Potential of the voltage source, V = 230 V                                                                                                    Impedance (Z) of the given parallel LCR circuit is given as:

1/Z = √(1/R² +(1/ωL -ωC)²)

Where, ω = Angular frequency                                  ^Z

At resonance, (1/ωL – ωC) = 0

Therefore, ω = 1/√(LC)   =  1 / √(5 x 80 x 10^–6)  = 50 rad/s

Hence, the magnitude of Z is the maximum at 50 rad/s. As a result, the total current is minimum, rms current flowing through inductor L is given as:

I_L= V/ωL = 230 /(50 x 5) = 0.92 A

rms current flowing through capacitor C is given as :

I_C = V/(1/ωC) =ωCV = 50 x 80 x 10^–6 x 230 =0.92A

rms current flowing through resistor R is given as :

I_R= V/R = 230/40 = 5.75A