DocumentCode :
1348722
Title :
Synchronizing and Damping Torques Analysis of Nonlinear Voltage Regulators
Author :
Gurrala, Gurunath ; Sen, Indraneel
Author_Institution :
Dept. of Electr. Eng., Indian Inst. of Sci., Bangalore, India
Volume :
26
Issue :
3
fYear :
2011
Firstpage :
1175
Lastpage :
1185
Abstract :
This paper makes an attempt to assess the benefits of replacing a conventional generator excitation system (AVR+PSS) with a nonlinear voltage regulator using the concepts of synchronizing and damping torque components in a single machine infinite bus (SMIB) system. In recent years, there has been considerable interest in designing nonlinear excitation controllers, which are expected to give better dynamic performance over a wider range of system and operating conditions. The performance of these controllers is often justified by simulation studies on few test cases which may not adequately represent the diverse operating conditions of a typical power system. The performance of two such nonlinear controllers which are designed based on feedback linearization and include automatic voltage regulation with good dynamic performance have been analyzed using an SMIB model. Linearizing the nonlinear control laws along with the SMIB system equations, a Heffron Phillip´s type of a model has been derived. Concepts of synchronizing and damping torque components have been used to show that such controllers can impair the small signal stability under certain operating conditions. This paper shows the possibility of negative damping contribution due to nonlinear voltage regulators and gives a new insight on understanding the physical impact of complex nonlinear control laws on power system dynamics.
Keywords :
control system synthesis; damping; electric machines; feedback; machine control; nonlinear control systems; torque; voltage control; voltage regulators; Heffron Phillip model; SMIB system; automatic voltage regulation; complex nonlinear control law; damping torque component; feedback linearization; generator excitation system; negative damping contribution; nonlinear excitation controller design; nonlinear voltage regulator; power system; power system dynamic; signal stability; single machine infinite bus system; synchronizing component; Damping; Mathematical model; Power system dynamics; Power system stability; Regulators; Torque; Voltage control; Feedback linearization; power system stabilizers; small-signal stability; transient stability;
fLanguage :
English
Journal_Title :
Power Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8950
Type :
jour
DOI :
10.1109/TPWRS.2010.2070814
Filename :
5599892
Link To Document :
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