Reactive Power Optimization of Power Grid based on TTGA Hybrid Algorithm

Author:

Sun Lei,Jing Feng,Sun Fan,Guo Hongyan,Xiong Dengyu,Feng Hanfu,Zhang Lu

Abstract

Abstract A new hybrid algorithm named TTGA hybrid algorithm which means genctic and tabu hybrid algorithm (TGA) with optimized tent mapping is proposed in this paper, through the research of tabu search(TS), genetic algorithm (GA)and chaotic algorithm(COA)[1].Based on evolutionary group generated by GA, auxiliary group formed by optimized tent mapping are ledinto group through specific selection mechanism so that the group become more diverse and effective. And in the meanwhile the tabu list is used to add a memory so that a similarity judgment mechanism is set based on the same individuals among group which provides a basis for using the TS operator to realize local fine search, so the tabu search plays the role of avoiding roundabout. In the new algorithm the introduction of TS ensures the capacity of hill climbing and refined search while the diversity of population and the effectiveness of evolution is assured by the regularity and ergodicity of chaotic. In this paper GA, IGA and TGA and TTGA is used in reactive power optimization of power grid, the results show that TTGA has the best performance on convergence and overall search.

Publisher

IOP Publishing

Subject

General Physics and Astronomy

Reference8 articles.

1. Probe into Genetic-tabu Search Hybrid Algorithm with Improved Tent Map and Its Application in Reactive Power Optimization of Local Grid;Sun;Shaanxi Electric Power,2012

2. Chaos optimization method and its application;Li;Control Theory and Applications,2007

3. Research on the improvements and applications of genetic algorithm based on chaos theory;Yang,2003

4. Using genetic algorithm and TOPSIS technique for multiobjective reactive power compensation;Azzam;Electric Power Systems Research,2010

5. Genetic algorithm based reactive power dispatch for voltage stability improvement;Devaraj;International Journal of Electrical Power & Energy Systems,2010

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