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Dual heuristic programming based nonlinear optimal control for a synchronous generator

Authors
Park, Jung-WookHarley, Ronald G.Venayagamoorthy, Ganesh K.Jang, Gilsoo
Issue Date
2월-2008
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
adaptive critic designs; dual heuristic programming Optimal control; power system stabilizer; radial basis function neural network; synchronous generator
Citation
ENGINEERING APPLICATIONS OF ARTIFICIAL INTELLIGENCE, v.21, no.1, pp.97 - 105
Indexed
SCIE
SCOPUS
Journal Title
ENGINEERING APPLICATIONS OF ARTIFICIAL INTELLIGENCE
Volume
21
Number
1
Start Page
97
End Page
105
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/124195
DOI
10.1016/j.engappai.2007.03.001
ISSN
0952-1976
Abstract
This paper presents the design of an infinite horizon nonlinear optimal neurocontroller that replaces the conventional automatic voltage regulator and the turbine governor (CONVC) for the control of a synchronous generator connected to an electric power grid. The neurocontroller design uses the novel optimization neuro-dynamic programming algorithm based on dual heuristic programming (DHP), which has the most robust control capability among the adaptive critic designs family. The radial basis function neural network (RBFNN) is used as the function approximator to implement the DHP technique. The DHP based optimal neurocontroller (DHPNC) using the RBFNN shows improved dynamic damping compared to the CONVC even when a power system stabilizer is added. Also, the DHPNC provides a robust feedback loop in real-time operation without the need for continual on-line training, thus reducing any risk of possible instability associated with the neural network based controllers. (c) 2007 Elsevier Ltd. All rights reserved.
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공과대학 (전기전자공학부)
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