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Optimal PV Parameter Estimation via Double Exponential Function-Based Dynamic Inertia Weight Particle Swarm Optimization

机译:基于双指数函数的动态惯性重量粒子群优化的最佳PV参数估计

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摘要

Parameters associated with electrical equivalent models of the photovoltaic (PV) system play a significant role in the performance enhancement of the PV system. However, the accurate estimation of these parameters signifies a challenging task due to the higher computational complexities and non-linear characteristics of the PV modules/panels. Hence, an effective, dynamic, and efficient optimization technique is required to estimate the parameters associated with PV models. This paper proposes a double exponential function-based dynamic inertia weight (DEDIW) strategy for the optimal parameter estimation of the PV cell and module that maintains an appropriate balance between the exploitation and exploration phases to mitigate the premature convergence problem of conventional particle swarm optimization (PSO). The proposed approach (DEDIWPSO) is validated for three test systems; (1) RTC France solar cell, (2) Photo-watt (PWP 201) PV module, and (3) a practical test system (JKM330P-72, 310 W polycrystalline PV module) which involve data collected under real environmental conditions for both single- and double-diode models. Results illustrate that the parameters obtained from proposed technique are better than those from the conventional PSO and various other techniques presented in the literature. Additionally, a comparison of the statistical results reveals that the proposed methodology is highly accurate, reliable, and efficient.
机译:与光伏(PV)系统的电力等效模型相关的参数在PV系统的性能增强中起着重要作用。然而,由于PV模块/面板的较高的计算复杂性和非线性特性,这些参数的准确估计意味着具有挑战性的任务。因此,需要有效,动态,有效的优化技术来估计与PV型号相关联的参数。本文提出了一种基于双指数函数的动态惯性权重(DEDIW)策略,用于PV电池和模块的最佳参数估计,在剥削和勘探阶段之间保持适当的平衡,以减轻常规粒子群优化的过早收敛问题( PSO)。建议的方法(DEDIWPSO)验证了三个测试系统; (1)RTC法国太阳能电池,(2)光瓦(PWP 201)PV模块,(3)实用的测试系统(JKM330P-72,310 W多晶PV模块),其涉及在真实环境条件下收集的数据单二极管型号。结果说明,从提出的技术获得的参数优于来自文献中呈现的传统PSO的参数和各种其他技术。另外,统计结果的比较揭示了所提出的方法是高度准确,可靠和高效的。

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