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Parameter extraction of solar photovoltaic models by means of a hybrid differential evolution with whale optimization algorithm

机译:鲸鱼优化算法与混合差分进化的太阳光伏模型参数提取。

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摘要

Parameter extraction of solar photovoltaic (PV) models is a typical complex nonlinear multivariable strongly coupled optimization problem. The original differential evolution (DE) is good at exploring the search space and locating the region of global optimum, but it is slow at exploitation of the solutions. Quite the opposite, the original whale optimization algorithm (WOA) is good at exploiting the population information, but it easily suffers from premature convergence. In such a context, in this paper, an effective hybrid method named DE/WOA by combining the exploration of DE with the exploitation of WOA is proposed for extracting the accurate parameters of PV models. A set of 13 numerical benchmark functions with different characteristics is firstly employed to verify the performance of DE/WOA. Then, DE/WOA is applied to parameter extraction of three PV models, i.e., single diode, double diode, and PV module models. Finally, DE/WOA is implemented to a practical PV power station in the Guizhou Power Grid of China to further validate its effectiveness under different irradiances, temperatures, and dynamic weather conditions. All the experimental results comprehensively demonstrate that DE/WOA performs significantly better than the original DE, WOA, and five advanced variants of them and is highly competitive with some recently-proposed parameter extraction methods.
机译:太阳能光伏(PV)模型的参数提取是一个典型的复杂非线性多变量强耦合优化问题。原始的微分进化(DE)擅长探索搜索空间并确定全局最优区域,但利用解的速度却很慢。相反,原始的鲸鱼优化算法(WOA)善于利用种群信息,但容易遭受过早收敛的困扰。在这种情况下,本文提出了一种有效的混合方法DE / WOA,该方法将DE的探索与WOA的开发相结合,以提取PV模型的准确参数。首先采用一组13个具有不同特征的数值基准函数来验证DE / WOA的性能。然后,将DE / WOA应用于三个PV模型的参数提取,即单二极管,双二极管和PV模块模型。最后,将DE / WOA应用于中国贵州电网中的实际光伏电站,以进一步验证其在不同辐照度,温度和动态天气条件下的有效性。所有实验结果全面证明,DE / WOA的性能明显优于原始DE,WOA及其五个高级变体,并且与最近提出的某些参数提取方法具有很高的竞争力。

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