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Quadratic boost converter for wind energy conversion system using back propagation neural network maximum power point tracking

Publication Type : Journal Article

Publisher : International Journal of Energy Technology and Policy

Source : International Journal of Energy Technology and Policy, Vol.18, No.1,pp 71-89. Inderscience, March 2022.(Scopus Indexed)

Url : https://www.inderscienceonline.com/doi/abs/10.1504/IJETP.2022.121516

Campus : Coimbatore

School : School of Engineering

Department : Electrical and Electronics

Year : 2022

Abstract : The article presents a DC-to-DC high step-up quadratic boost converter with maximum power point tracking (MPPT) technique using artificial neural network (ANN) for wind energy transfer systems. In order to get the maximum possible electrical energy from the wind speed, the proposed topology employs a back propagation network (BPN) based neural network control technique. A quadratic boost converter (QBC) is employed in this system to attain the higher voltage rating, and its performance is tested with a boost converter to determine its efficiency. The proposed system is developed in MATLAB/Simulink platform to demonstrate the operating principle under continuous conduction mode. The results obtained from this proposed system are more favourable as compared with classical perturb and observe (P&O).

Cite this Research Publication : Ramji Tiwari, P Pandiyan, S Saravanan, T Chinnadurai, N Prabaharan, K Kumar“Quadratic boost converter for wind energy conversion system using back propagation neural network maximum power point tracking” International Journal of Energy Technology and Policy, Vol.18, No.1,pp 71-89. Inderscience, March 2022.(Scopus Indexed)

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