DocumentCode :
2378269
Title :
A Higher-Order Newton Method Approach to Computing Transient Stability Margins
Author :
Juarez, C. ; Castellanos, R. ; Messina, A.R. ; Gonzalez, A.R.
Author_Institution :
Graduate Program in Electr. Eng., Guadalajara
fYear :
2007
fDate :
Sept. 30 2007-Oct. 2 2007
Firstpage :
360
Lastpage :
367
Abstract :
A new iterative procedure for accurately computing the transient stability margin of multimachine power systems is presented. The approach is based on a variant of a Newton´s method with higher order convergence and enables the transient stability margin to be determined with respect to a particular contingency or variation of a critical system parameter. A general technique for the computation of transient stability margins is suggested. In this procedure, the system dynamic behavior following a given perturbation is represented by a time-varying one-machine infinite bus equivalent. Using trapezoidal integration and polynomial approximation techniques, the equal-area criterion conditions are transformed into a form suitable for nonlinear analysis of the critical stability margin. By combining the extended equal area criterion with higher-order Newton-type techniques, a method is then proposed to compute the transient stability margin. The accuracy of the proposed method is verified through simulation studies on a large, realistic power system model. Preliminary results of the application of the proposed technique to the calculation of critical clearing times and critical loading conditions of a large power system are presented and discussed.
Keywords :
Newton method; perturbation techniques; power system stability; higher-order Newton method; multimachine power systems; perturbation; polynomial approximation; realistic power system; transient stability computation; trapezoidal integration; Convergence; Newton method; Nonlinear dynamical systems; Power system analysis computing; Power system modeling; Power system simulation; Power system stability; Power system transients; Stability criteria; Time varying systems; Equal-area criterion; OMIB equivalent; Transient stability assessment;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Symposium, 2007. NAPS '07. 39th North American
Conference_Location :
Las Cruces, NM
Print_ISBN :
978-1-4244-1726-1
Electronic_ISBN :
978-1-4244-1726-1
Type :
conf
DOI :
10.1109/NAPS.2007.4402335
Filename :
4402335
Link To Document :
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