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Optimized Fuzzy Controller for MPPT of Grid-connected PV Systems in Rapidly Changing Atmospheric Conditions

机译:快速改变大气条件下电网连接光伏系统MPPT的优化模糊控制器

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摘要

Due to nonlinear behavior of power production of photovoltaic (PV) systems., it is necessary to apply the maximum power point tracking (MPPT) techniques to generate the maximum power. The conventional MPPT methods do not function properly in rapidly changing atmospheric conditions. In this study., a fuzzy logic controller (FLC) optimized by a combination of particle swarm optimization (PSO) and genetic algorithm (GA) is proposed to obtain the maximum power point (MPP). The proposed FLC uses the ratio of power variations to voltage variations and the derivative of power variations to voltage variations as inputs and uses the duty cycle as the output. The range of changes in fuzzy membership functions and fuzzy rules are proposed as an optimization problem optimized by the PSO-GA. The proposed design is validated for MPPT of a PV system using MATLAB/Simulink software. The results indicate a better performance of the proposed FLC compared to the common methods.
机译:由于光伏(PV)系统电力产生的非线性行为。,有必要应用最大功率点跟踪(MPPT)技术以产生最大功率。传统的MPPT方法不能正常工作,在快速变化的大气条件下。在本研究中,提出了一种通过粒子群优化(PSO)和遗传算法(GA)的组合优化的模糊逻辑控制器(FLC),以获得最大功率点(MPP)。所提出的FLC使用功率变化与电压变化的比率和功率变化的导数与电压变化为输入,并使用占空比作为输出。提出了模糊隶属函数和模糊规则的变化范围作为PSO-GA优化的优化问题。使用MATLAB / Simulink软件验证了所提出的设计,用于PV系统的MPPT。结果表明,与常用方法相比,该提出的FLC的性能更好。

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