Question 2.34: An inductive coil of resistance 10 Ω and inductance 20 mH ar...
An inductive coil of resistance 10 Ω and inductance 20 mH are connected in series with a capacitor of 10 μF. Calculate the frequency at which the circuit will resonate. If a voltage of 50 V at resonant frequency was applied across the circuit, calculate the voltage across the circuit components and the Q-factor.
R = 10 Ω, L = 20 × 10^{–3} H, C = 10 × 10^{–6} F
at resonance, X_{L} = X_{C}
from which we get resonance frequency
f_{0}=\frac{1}{2π\sqrt{LC}}=\frac{1}{6.28\sqrt{20 × 10^{-3} × 10 × 10^{-6}}}
= 356 Hz
At resonance, impedance of the circuit is equal to R. Therefore, the maximum current that will flow is equal to
I_{0}=\frac{V}{R}=\frac{50}{10}=5 A
To calculate the voltage drop across the circuit components, we calculate X_{L} and X_{C} at the resonance frequency first.
X_{L} = 2πf_{0}L = 2 × 3.14 × 356 × 20 ×10^{-3} Ω
= 44.7 Ω
voltage drop across L, V_{L} = I_{0} X_{L} = 5 × 44.7 = 223.5 V
voltage drop across R, V_{R} = I_{0} R = 5 × 10 = 50 V
Note that the voltage drop across R is the same as the supply voltage, i.e., 50 V. Voltage drop across the capacitor should be the same as the voltage drop across inductive reactance X_{L}. Let us calculate V_{C}.
V_{C}=I_{0} X_{C}=\frac{I_{0}}{2πf_{0}C}
Substituting values
V_{C}=\frac{5}{6.28 × 356 × 10 × 10^{-6}}
=\frac{5 × 10^{3}}{6.28 × 3.56 }=223.5 V
Thus, V_{L} = V_{C} = 223.5 V
Q-factor =\frac{ V_{L}}{V}=\frac{223.5}{50}=4.47