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Flexible Nonlinear Voltage Control Design for Power Systems

  • Mark Gordon
  • , David J. Hill
  • Australian National University
  • The University of Sydney

Research output: Chapter in Book/Report/Conference proceedingArticle in proceedingsResearchpeer-review

Abstract

This paper presents the Direct Feedback Linearization (DFL) technique as a simple and flexible nonlinear control method in designing robust nonlinear excitation controllers for stability enhancement and voltage regulation of power systems. This technique offers considerable flexibility in designing controllers for all relevant variables. The main advantage of this technique is the possibility of selecting various control loops for a particular application problem. This is of paramount importance in control systems and power system engineering especially where all relevant variables may not be directly measured. As an example application, four different robust nonlinear excitation controllers are designed and compared to enhance voltage regulation of a power system. Simulation results carried out on a single machine infinite bus (SMIB) power system model show the enhancement of system stability and voltage regulation for different control structures regardless of the fault and changes in network parameters.
Original languageEnglish
Title of host publicationIEEE Multi-Conference on Systems and Control
Publication date2007
Pages1097-1102
ISBN (Print)1-4244-0443-6
Publication statusPublished - 2007
Externally publishedYes
Event2007 IEEE Multi-Conference on Systems and Control - Singapore, Singapore
Duration: 1 Oct 20073 Oct 2007
Conference number: 1
http://ieeecss.org/event/ieee-multi-conference-systems-and-control-9

Conference

Conference2007 IEEE Multi-Conference on Systems and Control
Number1
Country/TerritorySingapore
CitySingapore
Period01/10/200703/10/2007
Internet address

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