4.6 Article

Estimating Parameters of Photovoltaic Models Using Accurate Turbulent Flow of Water Optimizer

期刊

PROCESSES
卷 9, 期 4, 页码 -

出版社

MDPI
DOI: 10.3390/pr9040627

关键词

photovoltaic; parameter extraction; TFWO; optimization; double diode model; and three diode model

资金

  1. Department of Electrical Engineering and Automation, School of Electrical Engineering, Aalto University, Espoo, Finland

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The paper highlights the successful extraction of parameters in photovoltaic models using the TFWO algorithm, presenting its effectiveness compared to other recent optimization techniques. The study demonstrates the accuracy and close approximation of the TFWO algorithm to experimental data.
Recently, the use of diverse renewable energy resources has been intensively expanding due to their technical and environmental benefits. One of the important issues in the modeling and simulation of renewable energy resources is the extraction of the unknown parameters in photovoltaic models. In this regard, the parameters of three models of photovoltaic (PV) cells are extracted in this paper with a new optimization method called turbulent flow of water-based optimization (TFWO). The applications of the proposed TFWO algorithm for extracting the optimal values of the parameters for various PV models are implemented on the real data of a 55 mm diameter commercial R.T.C. France solar cell and experimental data of a KC200GT module. Further, an assessment study is employed to show the capability of the proposed TFWO algorithm compared with several recent optimization techniques such as the marine predators algorithm (MPA), equilibrium optimization (EO), and manta ray foraging optimization (MRFO). For a fair performance evaluation, the comparative study is carried out with the same dataset and the same computation burden for the different optimization algorithms. Statistical analysis is also used to analyze the performance of the proposed TFWO against the other optimization algorithms. The findings show a high closeness between the estimated power-voltage (P-V) and current-voltage (I-V) curves achieved by the proposed TFWO compared with the experimental data as well as the competitive optimization algorithms, thanks to the effectiveness of the developed TFWO solution mechanism.

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