Recall that: • If a closed-loop (CL) system is stable, then one may increase the gain (by up to a certain amount) and still maintain CL stability. . On the other hand, if the CL system in unstable, then one may decrease the gain (by up to a certain amount) and still have CL instability. You find that the gain margin of a nominal loop transfer function (with no right-half plane open-loop pole) to be 20 dB. Now answer the following: beta_m> 0, there exists a positive gain margin 1) The closed-loop system is stable If L(s) has a gain margin beta_m, then the CL system 1 + beta L(s) is stable for every beta < beta_m 2) One may increase (or, decrease) the gain up to 10 and still have CL stability (or, instability). 20log_10(10) = 20 ✓ NOTE: The second part is dependent on your answer to the first part, i.e., • If you answered "stable" to part-1, you will read part-2 as "increase the gain by up to X and still have CL stability". • If you answered "unstable" to part-1, you will read part-2 as "decrease the gain by up to X and still have Cl instability"

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
Recall that:
• If a closed-loop (CL) system is stable, then one may increase the gain (by up to
a certain amount) and still maintain CL stability.
. On the other hand, if the CL system in unstable, then one may decrease the
gain (by up to a certain amount) and still have CL instability.
You find that the gain margin of a nominal loop transfer function (with no right-half
plane open-loop pole) to be 20 dB. Now answer the following:
beta_m > 0, there exists a positive gain margin
1) The closed-loop system is stable
If L(s) has a gain margin beta_m, then the CL system 1 + beta L(s) is stable for every beta < beta_m
2) One may increase (or, decrease) the gain up to 10
20log_10(10) = 20 ✓
and still have CL stability (or, instability).
NOTE: The second part is dependent on your answer to the first part, i.e.,
• If you answered "stable" to part-1, you will read part-2 as "increase the gain by
up to X and still have CL stability".
• If you answered "unstable" to part-1, you will read part-2 as "decrease the gain
by up to X and still have CL instability".
Transcribed Image Text:Recall that: • If a closed-loop (CL) system is stable, then one may increase the gain (by up to a certain amount) and still maintain CL stability. . On the other hand, if the CL system in unstable, then one may decrease the gain (by up to a certain amount) and still have CL instability. You find that the gain margin of a nominal loop transfer function (with no right-half plane open-loop pole) to be 20 dB. Now answer the following: beta_m > 0, there exists a positive gain margin 1) The closed-loop system is stable If L(s) has a gain margin beta_m, then the CL system 1 + beta L(s) is stable for every beta < beta_m 2) One may increase (or, decrease) the gain up to 10 20log_10(10) = 20 ✓ and still have CL stability (or, instability). NOTE: The second part is dependent on your answer to the first part, i.e., • If you answered "stable" to part-1, you will read part-2 as "increase the gain by up to X and still have CL stability". • If you answered "unstable" to part-1, you will read part-2 as "decrease the gain by up to X and still have CL instability".
Expert Solution
steps

Step by step

Solved in 4 steps with 3 images

Blurred answer
Knowledge Booster
Stability Analysis in Power System
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,