The figure below (Figure 2) shows a typical electronic circuit consisted of a DC source with voltage of 12.0 V, a resistor with resistance of 120 N, 4.7 µF capacitor, and an inductor with unknown inductance. In one study, when the switch S is closed for a long interval, the potential difference measured across the capacitor was zero. As the switch S is open, the maximum potential difference measured across the capacitor was 24 V. Based on these observations,

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...
icon
Related questions
Question

please explain steps-by-steps solution tq

The figure below (Figure 2) shows a typical electronic circuit consisted of a DC source
with voltage of 12.0 V, a resistor with resistance of 120 N, 4.7 µF capacitor, and an inductor
with unknown inductance. In one study, when the switch S is closed for a long interval,
the potential difference measured across the capacitor was zero. As the switch S is open,
the maximum potential difference measured across the capacitor was 24 V. Based on these
observations,
R
Figure 2: Electronic Circuit consisting of resistive (R), inductive (L), and capacitive (C)
elements.
(a). Explain briefly (one or two sentences would be enough) about the zero potential
difference measured across the capacitor when the switch S is closed for a long time.
(b). Calculate the maximum amount of current that the circuit can reach when switch S was
closed for a long interval.
(c). Discuss the flow of charges in the circuit when switch S was opened.
(d). Calculate the inductance that best describe the above scenario.
(e). Calculate the time constant for the RL circuit when switch S was closed.
(f). Calculate the oscillating frequency for the LC circuit.
(g).By considering the moment switch S open as t = 0 , calculate the shortest time required
for both inductor and capacitor to have the same magnitude of energy.
ll
Transcribed Image Text:The figure below (Figure 2) shows a typical electronic circuit consisted of a DC source with voltage of 12.0 V, a resistor with resistance of 120 N, 4.7 µF capacitor, and an inductor with unknown inductance. In one study, when the switch S is closed for a long interval, the potential difference measured across the capacitor was zero. As the switch S is open, the maximum potential difference measured across the capacitor was 24 V. Based on these observations, R Figure 2: Electronic Circuit consisting of resistive (R), inductive (L), and capacitive (C) elements. (a). Explain briefly (one or two sentences would be enough) about the zero potential difference measured across the capacitor when the switch S is closed for a long time. (b). Calculate the maximum amount of current that the circuit can reach when switch S was closed for a long interval. (c). Discuss the flow of charges in the circuit when switch S was opened. (d). Calculate the inductance that best describe the above scenario. (e). Calculate the time constant for the RL circuit when switch S was closed. (f). Calculate the oscillating frequency for the LC circuit. (g).By considering the moment switch S open as t = 0 , calculate the shortest time required for both inductor and capacitor to have the same magnitude of energy. ll
Expert Solution
steps

Step by step

Solved in 5 steps with 3 images

Blurred answer
Knowledge Booster
Basic Signals and Its Properties
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, electrical-engineering and related others by exploring similar questions and additional content below.
Similar questions
  • SEE MORE QUESTIONS
Recommended textbooks for you
Introductory Circuit Analysis (13th Edition)
Introductory Circuit Analysis (13th Edition)
Electrical Engineering
ISBN:
9780133923605
Author:
Robert L. Boylestad
Publisher:
PEARSON
Delmar's Standard Textbook Of Electricity
Delmar's Standard Textbook Of Electricity
Electrical Engineering
ISBN:
9781337900348
Author:
Stephen L. Herman
Publisher:
Cengage Learning
Programmable Logic Controllers
Programmable Logic Controllers
Electrical Engineering
ISBN:
9780073373843
Author:
Frank D. Petruzella
Publisher:
McGraw-Hill Education
Fundamentals of Electric Circuits
Fundamentals of Electric Circuits
Electrical Engineering
ISBN:
9780078028229
Author:
Charles K Alexander, Matthew Sadiku
Publisher:
McGraw-Hill Education
Electric Circuits. (11th Edition)
Electric Circuits. (11th Edition)
Electrical Engineering
ISBN:
9780134746968
Author:
James W. Nilsson, Susan Riedel
Publisher:
PEARSON
Engineering Electromagnetics
Engineering Electromagnetics
Electrical Engineering
ISBN:
9780078028151
Author:
Hayt, William H. (william Hart), Jr, BUCK, John A.
Publisher:
Mcgraw-hill Education,