DocumentCode :
1443888
Title :
Gain-Scheduled {cal H}_{\\infty } Control for WECS via LMI Techniques and Parametrically Dependent Feedback Part I: Model Development Fundamentals
Author :
Muhando, Endusa Billy ; Senjyu, Tomonobu ; Uehara, Aki ; Funabashi, Toshihisa
Author_Institution :
Univ. of the Ryukyus, Nishihara, Japan
Volume :
58
Issue :
1
fYear :
2011
Firstpage :
48
Lastpage :
56
Abstract :
Simulation has become the most important technique used today for evaluation of engineering solutions, and modeling plays a crucial part in the design of intelligent control paradigms for complex dynamic structures. For the analysis of a megawatt-class wind-energy conversion system (WECS), this research adopts the H control theory in designing an advanced control paradigm that accomplishes the dual purpose of energy capture optimization, as well as power train cyclic load alleviation by mitigating against wind-speed fluctuations. This work is presented in two parts: The first details the modeling of the subsystems of WECS and introduces the multiobjective H control concept, and the second deals with the implementation of the control paradigm. Presented herein is a modeling approach of individual subsystems as a basis for devising the unified control strategy for a 2-MW grid-connected pitch-regulated variable-speed WECS that incorporates a doubly fed induction generator. The credibility of the archetype, to establish the argument that the models produce sound insights and comparable results to data from the real system, is ascertained via validation.
Keywords :
H control; asynchronous generators; intelligent control; linear matrix inequalities; load (electric); optimisation; power generation control; power grids; wind power; wind power plants; LMI; WECS; doubly fed induction generator; energy capture optimization; gain-scheduled H control; grid-connected pitch-regulated variable-speed WECS; intelligent control design; parametrically dependent feedback; power 2 MW; power train cyclic load alleviation; wind-energy conversion system; wind-speed fluctuation; Control systems; Control theory; Design engineering; Design optimization; Energy capture; Intelligent control; Power engineering and energy; Power system modeling; Wind energy; Wind speed; ${cal H}_{ infty}$ control; Aerodynamic power; drive train; model validation and verification; wind-energy conversion system (WECS);
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2010.2045317
Filename :
5432986
Link To Document :
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