The complete question is Resistance is 440 Ω, inductance L = 0.380 H, capacitance, C = 1.4 ×10⁻² μF
Answer:
43.12 V
Explanation:
Find the current through the capacitor.
[tex]I = \frac{V}{X_c}\\I = \frac{510 V}{X_c}\\I = (\omega C) (510V)\\I = \sqrt {\frac {C}{L}} (510V)\\I = \sqrt {\frac {1.4\times 10^{-8}}{0.380}} (510)= 0.098 A[/tex]
At resonance, impedance Z = R
V = IR
V = 0.098 × 440 = 43.12 V
