DocumentCode :
1419651
Title :
A New Practical Approach to Transient Stability-Constrained Optimal Power Flow
Author :
Pizano-Martínez, Alejandro ; Fuerte-Esquivel, Claudio R. ; Ruiz-Vega, Daniel
Author_Institution :
Fac. of Electr. Eng., Univ. Michoacana de San Nicolas de Hidalgo, Morelia, Mexico
Volume :
26
Issue :
3
fYear :
2011
Firstpage :
1686
Lastpage :
1696
Abstract :
This paper presents a new, significantly improved, approach to formulate a global transient stability-constrained optimal power flow (TSC-OPF), where the sets of dynamic and transient stability constraints to be considered in the optimization process are reduced to one single stability constraint. This constraint is derived from dynamic information provided by the SIngle Machine Equivalent (SIME) method and is only expressed in terms of steady-state variables, which allows us to diminish the length of the time-domain simulation to be included into the global TSC-OPF to a single (initial) time step. In this way, the size of the resulting optimization problem is reduced to one very similar to that of a conventional OPF, overcoming the main drawback of global TSC-OPF techniques (its huge dimension) while maintaining its accuracy and improving its practical application to real power networks. Effectiveness of the proposal is demonstrated by numerical examples on the WSCC three-machine, nine-bus system and the Mexican 46-machine, 190-bus system.
Keywords :
load flow; optimisation; power system transient stability; time-domain analysis; 190-bus system; Mexican 46-machine; WSCC three-machine; dynamic stability constraints; global transient stability-constrained optimal power flow; nine-bus system; optimization process; real power networks; single machine equivalent method; steady-state variables; time-domain simulation; transient stability constraints; Power system stability; Rotors; Stability criteria; Trajectory; Transient analysis; Global TSCOPF; SIngle Machine Equivalent (SIME) method; one machine infinite bus (OMIB); transient stability-constrained optimal power flow (TSCOPF);
fLanguage :
English
Journal_Title :
Power Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8950
Type :
jour
DOI :
10.1109/TPWRS.2010.2095045
Filename :
5680997
Link To Document :
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