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Maximum power point tracking of a photovoltaic energy system using neural fuzzy techniques 被引量:1

Maximum power point tracking of a photovoltaic energy system using neural fuzzy techniques
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摘要 In order to improve the output efficiency of a photovoltaic (PV) energy system, the real-time maximum power point (MPP) of the PV array should be tracked closely. The non-linear and time-variant characteristics of the photovoltaic array and the non-linear and non-minimum phase characteristics of a boost converter make it difficult to track the MPP as in traditional control strategies. A neural fuzzy controller (NFC) in conjunction with the reasoning capability of fuzzy logical systems and the learning capability of neural networks is proposed to track the MPP in this paper. A gradient estimator based on a radial basis function neural network is developed to provide the reference information to the NFC. With a derived learning algorithm, the parameters of the NFC are updated adaptively. Experimental results show that, compared with the fuzzy logic control algorithm, the proposed control algorithm provides much better tracking performance. In order to improve the output efficiency of a photovoltaic (PV) energy system, the real-time maximum power point (MPP) of the PV array should be tracked closely. The non-linear and time-variant characteristics of the photovoltaic array and the non-linear and non-minimum phase characteristics of a boost converter make it difficult to track the MPP as in traditional control strategies. A neural fuzzy controller (NFC) in conjunction with the reasoning capability of fuzzy logical systems and the learning capability of neural networks is proposed to track the MPP in this paper. A gradient estimator based on a radial basis function neural network is developed to provide the reference information to the NFC. With a derived learning algorithm, the parameters of the NFC are updated adaptively. Experimental results show that, compared with the fuzzy logic control algorithm, the proposed control algorithm provides much better tracking performance.
出处 《Journal of Shanghai University(English Edition)》 CAS 2009年第1期29-36,共8页 上海大学学报(英文版)
基金 supported by the National Natural Science Foundation of China (Grant No.20576071)
关键词 photovoltaic array boost converter maximum power point tracking (MPPT) neural fuzzy controller (NFC) radial basis function neural networks (RBFNN) photovoltaic array, boost converter, maximum power point tracking (MPPT), neural fuzzy controller (NFC),radial basis function neural networks (RBFNN)
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  • 1戚志东,朱新坚,曹广益.MCFC燃料电池的非线性建模及基于FGA的模糊控制(英文)[J].Journal of Shanghai University(English Edition),2006,10(2):144-150. 被引量:1
  • 2Zhi-dong Qi Ph. D. Candidate,Xin-jian Zhu Prof.,Guang-yi Cao.Nonlinear modeling of molten carbonate fuel cell stack and FGA-based fuzzy control[J].Journal of Shanghai University (English Edition).2006(2)
  • 3Xiao W D,Dunford W G,Palmer, P R, et al.Reg- ulation of photovoltaic voltage[].IEEE Transactions on Industrial Electronics.2007
  • 4Shtessela Y B,Zinober A S I,Shkolnikov Il A.Sliding mode control of boost and buck-boost power converters using method of stable system centre[].Automatica.2003
  • 5Swiegers W,Enslin J H R.An integrated maximum power point tracker for photovoltaic panels[].Pro- ceedings of IEEE International Symposium on Indus- trial Electronics.1998
  • 6Brambilla A.New approach to photovoltaic arrays maximum power point tracking[].Proceeding of theth IEEE Power Electronics Specialists Conference.1998
  • 7Altasa I H,Sharaf A M.A novel maximum power fuzzy logic controller for photovoltaic solar energy sys- tems[].Renewable Energy.2008
  • 8Torres A M,Antunes F L M.An artificial neural network-based real time maximum power tracking con- troller for connecting a PV system to the grid[].The th Annual Conference of the IEEE Industrial Electronics Society.1998
  • 9Das D,Esmaili R,Xu L Y, et al.An optimal de- sign of a grid connected hybrid wind/photovoltaic/fuel cell system for distributed energy production[].Thend Annual Conference of the IEEE Industrial Elec- tronics Society.2005
  • 10Xiao W D,Dunford W G,Capel A.A novel mod- eling method for photovoltaic cells[].IEEE Transactions on Power Electronics.2004

同被引文献20

  • 1CARRASCO J M, FRANQUELO L G, BIALASIEWICZ J T, GALVAN E, PORTILLO-GUISADO R C, PRATS M A M, LEON J I, MORENO-ALFONSO N. Power-electronic systems for the grid integration of renewable energy sources: A survey [J]. IEEE Transactions on Industrial Electronics, 2006, 53(4): 1002-1016.
  • 2HEIER S. Grid integration of wind energy conversion systems [M]. Hobo-ken: Wiley, 1998.
  • 3BOUKHEZZAR B, SIGUERDIDJANE H. Nonlinear control of variable speed wind turbines without wind speed measurement [C]// Proceedings of 44th Conference on Decision and Control, and the European Control Con- ference, Serville, Spain. 2005: 3456-3461.
  • 4KOUTROULIS E, KALAITZAKIS K. Design of a maximum power tracking system for wind-energy-conversion ap- plications [J]. IEEE Transactions on Industrial Elec- tronics, 2006, 53(2): 486-494.
  • 5TAPIA A, TAPIA G, OSTOLAZA J X, SAENZ J R. Mod- eling and control of a wind turbine driven doubly fed induction generator [J]. IEEE Transactions on Energy Conversion, 2003, 18(2): 194-204.
  • 6QIAO W, ZHOU W, ALLER J M, HARLEY R G. Wind speed estimation based sensorless output maximization control for a wind turbine driving a DFIG [J]. IEEE Transactions on Industrial Electronics, 2008, 23(3): 1156-1169.
  • 7HIGUCHI Y, YAMAMURA N, ISHIDA M, HORI T. An im- provement of performance for small-scaled wind power generating system with permanent magnet type syn- chronous generator [C]// IEEE Industrial Electronics Society Conference, Nagoya, Japan. 2000, 2: 1037- 1043.
  • 8SENJYU T, TAMAKI S, MUHANDO E, URASAKI N, KINJO H, FUNABASHI T, FUJITA H, SEKINE H. Wind velocity and rotor position sensorless maximum power point tracking control for wind generation system [J]. Renewable Energy, 2006, 31(11): 1764-1775.
  • 9CHINCHILLA M, ARNALTES S, BURGOS J C. Control of permanent magnet generators applied to variable- speed wind-energy systems connected to the grid [J]. IEEE Transactions on Energy Conversion, 2006, 21(1): 130-135.
  • 10L1 S H, HASKEW T A. Characteristic study of vector-controlled direct driven permanent magnet synchronous generator in wind power generation [C]// Power Engineering Society General Meeting--- Conversion and Delivery of Electrial Energy in the 21st Century, Pittsburgh, USA. 2008, DOI: 10.1109/PES.2008.4596191.

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