DocumentCode :
2938106
Title :
An Improved Newton Load Flow for Distributed Generation Based on Different Control Strategies
Author :
Zhu, YongLi ; Yao, Jianguo
Author_Institution :
Res. Center, State Grid Electr. Power Res. Inst. (SGEPRI), Nanjing, China
fYear :
2011
fDate :
25-28 March 2011
Firstpage :
1
Lastpage :
5
Abstract :
This paper presents an improved Newton Raphson load flow algorithm considering distributed generation (DG) based on their control strategies. Different control strategies for various DGs are firstly investigated and the load flow model for direct-driven wind generator is especially mentioned. Then, each kind of DGs, including photovoltaic, wind turbine, fuel cell and microturbine, is assigned a bus type according to its certain control strategy. An improved Newton Raphson load flow method for DGs is derived involving two unconventional bus types: PI and PQ (V). Numerical tests are carried out on the PG&E 69 bus system. Iteration performance shows that the suggested algorithm can maintain a quadratic convergence feature even if various DGs are mixed in the test system. In addition, a comparative study with back forward sweep method demonstrates a better computational efficiency of the proposed algorithm in handling network with multiple PV type DGs.
Keywords :
Newton-Raphson method; distributed power generation; load flow; power distribution control; turbogenerators; Newton Raphson load flow algorithm; PG&E 69 bus system; PI bus; PQ bus; back forward sweep method; computational efficiency; direct-driven wind generator; distributed generation; fuel cell; microturbine; photovoltaic; quadratic convergence feature; wind turbine; Induction generators; Load flow; Load modeling; Photovoltaic systems; Reactive power; Wind turbines;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power and Energy Engineering Conference (APPEEC), 2011 Asia-Pacific
Conference_Location :
Wuhan
ISSN :
2157-4839
Print_ISBN :
978-1-4244-6253-7
Type :
conf
DOI :
10.1109/APPEEC.2011.5748951
Filename :
5748951
Link To Document :
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