<p>A series of RLC circuit consists of a 4 Ω resistor, a 4 mH inductor, and
ID: 2018551 • Letter: #
Question
<p>A series of RLC circuit consists of a 4 Ω resistor, a 4 mH inductor, and a 1 mF capacitor. It is connected to an ac voltage cource operating at an angular frequency ω = 1000 rad/sec with rms voltage Δv(rms) = 10V.</p><p> </p>
<p>(a) Calculate the resonance frequency of this circuit. Is the circuit operating above, below, or at resonance?</p>
<p>(b)Draw the impedance triangle and calculate the rms current flowing through the resistor.</p>
<p>(c) Calculate values for the average power dissipated in the resistor, the inductor, and the capacitor.</p>
<p>(d)Calcualte the peak voltages across the resistor, capacitor, and inductor and draw a corresponding phasor diagram.</p>
Explanation / Answer
A series RLC circuit consists of a resistance R = 4.0 Capacitance C = 1.00*10^-3 F , inductance L = 4.00*10^-3 H angular frequency is = 1000rad /s a) frequency of the circuit is f = 1/2 L C = 1/ 2 4.00*10^-3 H * 1.00*10^-3 F = 79.6 Hz b ) c ) Total average power P = V^2/ z z = R^2 +( X_L - X_C)^2 = (R)^2 + ( L - 1/ C)^2 = (4.0)^2 + ( 1000rad /s * 4.00*10^-3 H - 1/ 1000rad /s * 1.00*10^-3 F ) = 5.0 P = (10.0V)^2 / 5.0 = 20.0W c ) Total average power P = V^2/ z z = R^2 +( X_L - X_C)^2 = (R)^2 + ( L - 1/ C)^2 = (4.0)^2 + ( 1000rad /s * 4.00*10^-3 H - 1/ 1000rad /s * 1.00*10^-3 F ) = 5.0 P = (10.0V)^2 / 5.0 = 20.0WRelated Questions
Hire Me For All Your Tutoring Needs
Integrity-first tutoring: clear explanations, guidance, and feedback.
Drop an Email at
drjack9650@gmail.com
drjack9650@gmail.com
Navigate
Integrity-first tutoring: explanations and feedback only — we do not complete graded work. Learn more.