DocumentCode :
960735
Title :
Soft-Computing Model-Based Controllers for Increased Photovoltaic Plant Efficiencies
Author :
Varnham, Abdulhadi ; Al-Ibrahim, Abdulrahman M. ; Virk, Gurvinder S. ; Azzi, Djamel
Author_Institution :
Energy Res. Inst., Riyadh
Volume :
22
Issue :
4
fYear :
2007
Firstpage :
873
Lastpage :
880
Abstract :
Improved solar cell models and control methods using synergies of soft-computing techniques are used to demonstrate increased energy efficiencies of photovoltaic (PV) power plants connected to the electricity grid via space-vector-modulated three-phase inverters. The models and control strategies are combined to form two new model-based controllers that are more accurate and resilient than existing solutions resulting in increased power production. A radial-basis-function-network (RBFN) model with a neuro-fuzzy regulator applied to a plant well characterized by the conventional solar cell model provided an estimated 1.5% increase in power production over an existing conventional model proportional integral (PI)-regulator combination. A neuro-fuzzy model with a neuro-fuzzy controller applied to a plant poorly characterized by the conventional solar cell model gave an 8.6% increase in power. An analysis of the net contributions to the increased efficiencies shows that the improved models had the most effect on power gains.
Keywords :
fuzzy logic; fuzzy neural nets; invertors; photovoltaic power systems; power engineering computing; power station control; radial basis function networks; solar cells; RBFN model; electricity grid; neuro-fuzzy model; neuro-fuzzy regulator; photovoltaic power plants; radial-basis-function-network; soft-computing model-based controller; solar cell models; space-vector-modulated three-phase inverter; synergies; Inverters; Neural networks; Photovoltaic cells; Photovoltaic systems; Power generation; Power system modeling; Production; Regulators; Solar power generation; Support vector machines; Fuzzy neural networks; photovoltaic (PV) power systems; power system modeling; power system simulation;
fLanguage :
English
Journal_Title :
Energy Conversion, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8969
Type :
jour
DOI :
10.1109/TEC.2007.895877
Filename :
4374041
Link To Document :
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