Title :
System-centric control architecture for wide area monitoring and control of power system
Author :
Yousefian, Reza ; Kamalasadan, Sukumar
Author_Institution :
Electr. & Comput. Eng. Dept., Univ. of North Carolina at Charlotte, Charlotte, NC, USA
Abstract :
The main objective of this paper is to design and implement secured coordinated control and optimization algorithms and test it for improved power system dynamic stability. The method is to design a brain like control and coordination architecture using optimal control that are modular. Then an intelligent agent knowledge base is developed that can interact with each of the intelligent controllers and optimization algorithms on each bus in the power system providing multi-level and multi-objective capabilities. Such a robust intelligent coordinated controllers with fully functional and fault tolerant Multi-Agent Methodology (MAM) architecture are the important back-bone of next generation smart grid. The main advantage of such a design is its ability to make smart and intelligent control decisions in the presence of drastic system nonlinear movement.
Keywords :
control engineering computing; decision making; fault tolerant computing; intelligent control; knowledge based systems; multi-agent systems; nonlinear control systems; optimal control; power system control; power system dynamic stability; power system measurement; robust control; smart power grids; brain-like control architecture design; brain-like coordination architecture design; drastic system nonlinear movement; fault tolerant MAM architecture; fault tolerant multiagent methodology architecture; improved power system dynamic stability; intelligent agent knowledge base; intelligent control decision making; multilevel capabilities; multiobjective capabilities; next generation smart grid; optimal control; optimization algorithms; power system control; power system monitoring; robust intelligent coordinated controllers; secured coordinated control algorithm design; system-centric control architecture; wide area control; wide area monitoring; Artificial neural networks; Computer architecture; Generators; Mathematical model; Power system stability; Training; Feed Forward Neural Network; Intelligent Adaptive Control; Intelligent supervisory loop; Power system stabilizer; System-centric controller;
Conference_Titel :
Innovative Smart Grid Technologies (ISGT), 2013 IEEE PES
Conference_Location :
Washington, DC
Print_ISBN :
978-1-4673-4894-2
Electronic_ISBN :
978-1-4673-4895-9
DOI :
10.1109/ISGT.2013.6497921