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Comparative analysis of two-step GA-based PV array reconfiguration technique and other reconfiguration techniques

机译:基于两步GA的PV阵列重新配置技术和其他重新配置技术的比较分析

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摘要

Photovoltaic (PV) plants can be exposed to partial shading, which reduces the energy production and causes multi-peaks to form in the Power-Voltage (P-V) curve. As a result, the row currents of the PV modules will not be constant. Several techniques have been proposed to overcome partial shading, such as the static and dynamic reconfiguration techniques, with both aiming to reduce the difference in the row currents to improve energy production. Minimization of the row current via static techniques requires laborious work and extra wiring. On the other hand, dynamic techniques require an extensive monitoring system to support different tasks. Therefore, to improve the power generated from the PV array, this paper suggests a new reconfiguration technique for PV panels using Genetic algorithm (GA) and two main reconfigurable steps based on a switching matrix. In this technique, only the electrical connections of the PV panels are changed while its physical location remains unchanged. To verify the effectiveness of the proposed reconfiguration technique, the system was simulated and tested using MATLAB/SIMULINK software, with four shading patterns. The results were compared with other reconfiguration techniques, namely TCT configuration, competence square (CS), SuDoKu, two-phase array reconfiguration, Genetic algorithm (GA), Particle Swarm Optimization (PSO), and Modified Harris Hawks Optimization (MHHO). The performance of each shading case was also analyzed. Also, a comparative study on performance analysis in real-time application was carried out for each shading pattern. The results prove the superiority of the proposed technique over other techniques for overcoming partial shading.
机译:光伏(PV)植物可以暴露于部分阴影,这降低了能量产生并导致在电力电压(P-V)曲线中形成多峰。结果,光伏模块的行电流不会是恒定的。已经提出了几种技术来克服部分阴影,例如静态和动态重新配置技术,其旨在减少行电流的差异来改善能量产生。通过静态技术最小化行电流需要艰苦的工作和额外的布线。另一方面,动态技术需要广泛的监控系统来支持不同的任务。因此,为了改善从PV阵列产生的功率,本文建议使用基于切换矩阵的遗传算法(GA)和两个主要可重新配置步骤的PV面板的新重新配置技术。在该技术中,仅在其物理位置保持不变的同时仅改变PV面板的电连接。为了验证所提出的重配置技术的有效性,使用Matlab / Simulink软件进行模拟和测试系统,具有四种着色模式。将结果与其他重新配置技术进行比较,即TCT配置,能力广场(CS),Sudoku,两相阵列重新配置,遗传算法(GA),粒子群优化(PSO),以及修改的Harris Hawks Optimization(MHHO)。还分析了每个遮阳盒的性能。此外,对每个遮光图案进行了实时应用中的性能分析的比较研究。结果证明了所提出的技术的优越性,以克服部分遮蔽的其他技术。

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