scholarly journals Electrical Parameters Identification of Three-Diode Photovoltaic Model Based on Equilibrium Optimizer Algorithm

IEEE Access ◽  
2021 ◽  
Vol 9 ◽  
pp. 41891-41901
Author(s):  
Mahmoud A. Soliman ◽  
Ahmed Al-Durra ◽  
Hany M. Hasanien
2011 ◽  
Vol 117-119 ◽  
pp. 582-587 ◽  
Author(s):  
Jaroslaw Nowak ◽  
Dmytro S. Svyetlichnyy ◽  
Łukasz Łach

In the paper a flow stress model based on the dislocation theory in consideration of the recrystallization is shortly presented. The model contains two parts: a classic model of dislocation evolution and recrystallization model. The latter considers different kinds of recrystallization as the same process rooted in nucleation and grain growth. The results of the model parameters identification and the simulation are presented in this paper. Then disadvantages of the model are considered and new proposal for improvement the model are presented. Results of preliminary simulation are presented as well


2017 ◽  
Vol 45 (1) ◽  
pp. 67-71
Author(s):  
Bence Csomós ◽  
Dénes Fodor ◽  
Gábor Kohlrusz

Abstract The paper presents a current impulse-based excitation method for lead-acid batteries in order to define the initial electrical parameters for model-based online estimators. The presented technique has the capability to track the SoC (State of Charge) of a battery, however, it is not intended to be used for online SoC estimations. The method is based on the battery’s electrical equivalent Randles’ model [1]. Load current impulse excitation was applied to the battery clamps during discharge while the voltage and current was logged. Based on the Randles’ model, a model function and a fit function were implemented and used by exponential regression based on the measured data. The diffusion-related non-linear characteristic of the battery was approximated by a capacitorlike linear voltage function for speed and simplicity. The initial capacitance of this bulk capacitor was estimated by linear regression on measurements recorded in the laboratory. Then, the RC parameters of the equivalent battery model were derived from exponential regression on transients during each current impulse cycle. The battery model with initial RC parameters is suitable for model-based online observers.


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