DocumentCode :
602169
Title :
Maximum Power Point Tracking Control for Photovoltaic System Using Adaptive Neuro- Fuzzy “ANFIS”
Author :
Tarek, Bouktir ; Said, D. ; Benbouzid, M.E.H.
Author_Institution :
Univ. of Khanchela, Khanchela, Algeria
fYear :
2013
fDate :
27-30 March 2013
Firstpage :
1
Lastpage :
7
Abstract :
Due to scarcity of fossil fuel and increasing demand of power supply, we are forced to utilize the renewable energy resources. Considering easy availability and vast potential, world has turned to solar photovoltaic energy to meet out its ever increasing energy demand. The mathematical modeling and simulation of the photovoltaic system is implemented in the MATLAB/Simulink environment and the same thing is tested and validated using Artificial Intelligent (AI) like ANFIS. This paper presents Maximum Power Point Tracking Control for Photovoltaic System Using Adaptive Neuro- Fuzzy “ANFIS”. The PV array has an optimum operating point to generate maximum power at some particular point called maximum power point (MPP). To track this maximum power point and to draw maximum power from PV arrays, MPPT controller is required in a stand-alone PV system. Due to the nonlinearity in the output characteristics of PV array, it is very much essential to track the MPPT of the PV array for varying maximum power point due to the insolation variation. In order to track the MPPT conventional controller like Adaptive Neuro-Fuzzy “ANFIS” and fuzzy logic controller is proposed and simulated. The output of the controller, pulse generated from PWM can switch MOSFET to change the duty cycle of boost DC-DC converter. The result reveals that the maximum power point is tracked satisfactorily for varying insolation condition.
Keywords :
DC-DC power convertors; MOSFET; adaptive control; artificial intelligence; fuzzy control; maximum power point trackers; neurocontrollers; solar cells; ANFIS; MATLAB-Simulink environment; MOSFET; MPPT controller; PV arrays; adaptive neuro-fuzzy; artificial intelligent; boost DC-DC converter; duty cycle; energy demand; fossil fuel scarcity; fuzzy logic controller; insolation condition; mathematical modeling; maximum power point tracking control; photovoltaic cell; photovoltaic system; power supply; renewable energy resources; solar photovoltaic energy; stand-alone PV system; MATLAB; Modulation; ANFIS; MPPT; Photovoltaic; Proportional Integral Controller; Pulse Width Modulation; boost DC-DC; fuzzy logic;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ecological Vehicles and Renewable Energies (EVER), 2013 8th International Conference and Exhibition on
Conference_Location :
Monte Carlo
Print_ISBN :
978-1-4673-5269-7
Type :
conf
DOI :
10.1109/EVER.2013.6521559
Filename :
6521559
Link To Document :
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