Title :
Reactive Power and Voltage Control in Distribution Systems With Limited Switching Operations
Author :
Liu, M.B. ; Cañizares, Claudio A. ; Huang, W.
Author_Institution :
Electr. Power Coll., South China Univ. of Technol., Guangzhou
fDate :
5/1/2009 12:00:00 AM
Abstract :
An algorithm based on a nonlinear interior-point method and discretization penalties is proposed in this paper for the solution of the mixed-integer nonlinear programming (MINLP) problem associated with reactive power and voltage control in distribution systems to minimize daily energy losses, with time-related constraints being considered. Some of these constraints represent limits on the number of switching operations of transformer load tap changers (LTCs) and capacitors, which are modeled as discrete control variables. The discrete variables are treated here as continuous variables during the solution process, thus transforming the MINLP problem into an NLP problem that can be more efficiently solved exploiting its highly sparse matrix structure; a strategy is developed to round these variables off to their nearest discrete values, so that daily switching operation limits are properly met. The proposed method is compared with respect to other well-known MINLP solution methods, namely, a genetic algorithm and the popular GAMS MINLP solvers BARON and DICOPT. The effectiveness of the proposed method is demonstrated in the well-known PG&E 69-bus distribution network and a real distribution system in the city of Guangzhou, China, where the proposed technique has been in operation since 2003.
Keywords :
capacitor switching; genetic algorithms; integer programming; nonlinear programming; on load tap changers; power distribution control; reactive power control; sparse matrices; voltage control; BARON; China; DICOPT; GAMS MINLP solvers; MINLP; PG&E 69-bus distribution network; capacitors; discrete control variables; genetic algorithm; mixed-integer nonlinear programming problem; nonlinear interior-point method; reactive power control; sparse matrix structure; switching operations; transformer load tap changers; voltage control; Distribution systems; genetic algorithms; interior-point methods; mixed-integer nonlinear programming; nonlinear programming; optimal switching operations; optimization solvers; reactive power control; voltage control;
Journal_Title :
Power Systems, IEEE Transactions on
DOI :
10.1109/TPWRS.2009.2016362