Title :
Dynamic Stability and Excitation Control of Directly-Coupled Multimachine System
Author :
Chen, J.Y.H. ; Kusic, G.L.
Author_Institution :
Westinghouse Electric Corporation Research & Development Center
Abstract :
This paper introduces an efficient and accurate stabilization method for the design of linear optimal controllers which can stabilize a directly- coupled multimachine system via excitation control. A systematic modeling method is first developed to formulate a directly-coupled multimachine system into state space form with directly-measurable state variables. With this form, the stabilization of the multimachine system is converted into a linear-quadratic- Gaussian (LQG) problem. Next, a model reduction algorithm which can deal with any system with real and/or complex poles is developed. Incorporating this algorithm with Solheim´s pole-assignment technique as an example provides a new efficient and numerically accurate stabilization method. With this method, a feedback controller able to improve the dynamic stability of a directly-coupled multimachine system under wide-range operation via excitation control is developed. The design is verified by simulated results. The use of directly-measurable state variables also renders a physically implementable feedback controller design.
Keywords :
Adaptive control; Control systems; Cost function; Electric variables control; Impedance; Optimal control; Power generation; Power system modeling; Stability; State-space methods;
Journal_Title :
Power Apparatus and Systems, IEEE Transactions on
DOI :
10.1109/TPAS.1984.318256