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Fractional chaotic ensemble particle swarm optimizer for identifying the single, double, and three diode photovoltaic models' parameters

机译:分数阶混沌集成粒子群优化器,用于识别单,双和三个二极管光伏模型的参数

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摘要

Solar Photovoltaic is a widely used renewable energy resource, and hence, the accurate and effective modeling of the PV system is crucial in real-time. The accurate PV modeling helps to predict the performance of the PV plant. In this paper, authors have proposed a novel optimization algorithm named Fractional Chaotic Ensemble Particle Swarm Optimizer (FC-EPSO) to model solar PV modules accurately. This article focused on the modeling of single, double, and three diodes models based on experimental data under different environmental conditions. In FC-EPSO, a new approach in the meta-heuristic algorithms is proposed, where fractional chaos maps are incorporated into the algorithm to enhance its accuracy and reliability. FC-EPSO variants performance is evaluated based on three-different experimental datasets, in which two are widely utilized for commercial applications, while the third is measured in the laboratory under four different irradiance and temperature levels. For validation purposes, several statistical analyses and comparisons are carried out with the recent state-of-the-art algorithms. The statistical measures and comparative studies illustrate the accuracy and consistency of the proposed algorithm. The introduced technique is capable of emulating the experimental datasets with less deviation, a fast convergence rate, and short execution time.
机译:太阳能光伏是一种广泛使用的可再生能源,因此,准确,有效地建模光伏系统对于实时性至关重要。准确的光伏建模有助于预测光伏电站的性能。在本文中,作者提出了一种新颖的优化算法,称为分数混沌集成粒子群优化器(FC-EPSO),可以对太阳能光伏组件进行精确建模。本文重点研究了基于不同环境条件下的实验数据的单二极管,双二极管和三个二极管模型的建模。在FC-EPSO中,提出了一种新的元启发式算法,其中将分数阶混沌映射图纳入算法以提高其准确性和可靠性。 FC-EPSO变体的性能基于三个不同的实验数据集进行评估,其中两个被广泛用于商业应用,而第三个在实验室中在四个不同的辐照度和温度水平下进行了测量。为了进行验证,使用最新的算法对数据进行了一些统计分析和比较。统计量和比较研究说明了该算法的准确性和一致性。引入的技术能够以较小的偏差,快速的收敛速度和较短的执行时间来仿真实验数据集。

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