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Adaptive Artificial intelligence based fuzzy logic MPPTcontrol for stande-alone photovoltaic system under different atmospheric conditions

机译:不同大气条件下独立光伏系统的基于自适应人工智能的模糊逻辑MPPT控制

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there is an increased need for analysing the effect of atmospheric variables on photovoltaic (PV) production and performance. The outputs from the different PV cells in different atmospheric conditions, such as irradiation and temperature , differ from each other evidencing knowledge deficiency in PV systems [14]. Maximum power point tracking (MPPT) methods are used to maximize the PV array output power by tracking continuously the maximum power point (MPP). Among all MPPT methods existing in the literature, perturb and observe (P&O) is the most commonly used for its simplicity and ease of implementation; however, it presents drawbacks such as slow response speed, oscillation around the MPP in steady state, and even tracking in wrong way under rapidly changing atmospheric conditions. In order to allow a functioning around the optimal point Mopt, we have inserted a DC-DC converter (Buck–Boost) for a better matching between the PV and the load . This paper, we study the Maximum power point tracking using adaptive Intelligent fuzzy logic and conventional (P&O) control for stande-alone photovoltaic Array system .In particular, the performances of the controllers are analyzed under variation weather conditions with are constant temperature and variable irradiation. The proposed system is simulated by using MATLAB-SIMULINK. According to the results, fuzzy logic controller has shown better performance during the optimization.
机译:越来越需要分析大气变量对光伏(PV)生产和性能的影响。在不同的大气条件下,例如辐射和温度,来自不同PV电池的输出彼此不同,表明PV系统中的知识不足[14]。最大功率点跟踪(MPPT)方法用于通过连续跟踪最大功率点(MPP)来最大化光伏阵列的输出功率。在文献中存在的所有MPPT方法中,扰动和观察(P&O)是最常用的方法,因为它简单易行。但是,它具有诸如响应速度慢,在稳定状态下MPP周围振荡甚至在快速变化的大气条件下以错误的方式跟踪等缺点。为了允许在最佳点Mopt附近运行,我们插入了DC-DC转换器(Buck-Boost),以更好地匹配PV和负载。本文研究了基于自适应智能模糊逻辑和常规(P&O)控制的独立光伏阵列系统的最大功率点跟踪,特别是在恒温和可变辐射的变化天气条件下,分析了控制器的性能。 。所提出的系统是使用MATLAB-SIMULINK进行仿真的。根据结果​​,模糊逻辑控制器在优化过程中表现出更好的性能。

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