Penjelasan:

Resistance, R = 100 Ω

Inductance, L = 0.318 H

Applied voltage, V = 230<0° V

Frequency, f = 50 Hz

Current, I = 2.3<0° A

Reactance of inductor, XL = ωL = 2πfL = 2π × 50 × 0.318 = 100 Ω

Reactance of capacitor, XC = 1/ωC = 1/(2πfC)

Real part:

2.3 = 230 / (100 + 100 - 318.31C)

2.3 = 230 / (200 - 318.31C)

C = [230 / (2.3 × 118.31)] × 10^6

C = 8.2567 μF

Imaginary part:

0 = -230j / (100 + 100 - 318.31C)

0 = -230j / (200 - 318.31C)

318.31C = 200

C = 0.6289 μF

Reactance of inductor, XL = 2πfL = 2π × 50 × 3.18 = 1005.3 Ω

Real part:

2.3 = 230 / (100 + 1005.3 - 1/(2π × 50 × C))

2.3 = 230 / (1105.3 - 318.31C)

C = [230 / (2.3 × 318.31)] × 10^6

C = 361.46 μF

Imaginary part:

0 = -230j / (100 + 1005.3 - 1/(2π × 50 × C))

0 = -230j / (1105.3 - 318.31C)

318.31C = 1105.3

C = 3.47 μF

Hence, the value of capacitance of the circuit is 361.46 μF.

Voltage across the inductor, VL = XLI = 1005.3 × 2.3 = 2318.19 V

Total power consumed by the circuit, P = VI cos(θ), where θ is the phase angle between voltage and current.

cos(θ) = R/Z = 100 / √(100^2 + (1005.3 - 1/(2π × 50 × 361.46))^2) = 0.9848

P = 230 × 2.3 × 0