+ www R = 60 E = 10 V 20⁰ fs Hz moo L = C=? Where : L = 10 mH, and and the resonant frequency fs = 1800 Hz. Find the values of: C in µF @fs ✓μF, · Ω. XC (@fs) = RMS value of the current I at resonance = Total power dissipated by the circuit at resonance = The Quality Factor of the circuit Qs = The lower cutoff frequency f1 = ✓ Hz. ✓ Watt.
+ www R = 60 E = 10 V 20⁰ fs Hz moo L = C=? Where : L = 10 mH, and and the resonant frequency fs = 1800 Hz. Find the values of: C in µF @fs ✓μF, · Ω. XC (@fs) = RMS value of the current I at resonance = Total power dissipated by the circuit at resonance = The Quality Factor of the circuit Qs = The lower cutoff frequency f1 = ✓ Hz. ✓ Watt.
Introductory Circuit Analysis (13th Edition)
13th Edition
ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:Robert L. Boylestad
Chapter1: Introduction
Section: Chapter Questions
Problem 1P: Visit your local library (at school or home) and describe the extent to which it provides literature...
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Transcribed Image Text:+
www
R = 60
E =
10 V Z0°
fs Hz
moo
L
C=?
Where : L = 10 mH, and and the resonant frequency fs = 1800 Hz.
Find the values of :
C in µF @fs=
✓uF,
· Ω.
XC (@fs) =
RMS value of the current I at resonance =
Total power dissipated by the circuit at resonance =
The Quality Factor of the circuit Qs =
The lower cutoff frequency f1=
✓ Hz.
να
✓ Watt.
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