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首页> 外文期刊>Quality Control, Transactions >Optimal Performance of Dynamic Particle Swarm Optimization Based Maximum Power Trackers for Stand-Alone PV System Under Partial Shading Conditions
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Optimal Performance of Dynamic Particle Swarm Optimization Based Maximum Power Trackers for Stand-Alone PV System Under Partial Shading Conditions

机译:基于动态粒子群优化的最大功率跟踪器在局部遮荫条件下的独立PV系统的最佳性能

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摘要

One of the important tasks for increasing the efficiency of photovoltaic (PV) system is the development and improvement of the maximum power point tracking algorithms (MPPT). These MPPT algorithms lead to the ability to catch efficiently the global maximum power point of the partially shaded PV array. One of these trackers is the particle swarm optimization (PSO) algorithm which is one of the Soft computing techniques. The conventional PSO based trackers have many advantages such as the simplicity of hardware implementation and independence from the installed system. The actual problem of the practical application of PSO is the determination of its parameters to ensure high effectiveness of extracting the global MPP. Analysis of scientific papers devoted to the PSO algorithm has shown that there is currently no methodology for the optimal parameters & x2019; selection of PSO algorithm based maximum power trackers for the PV system. This paper aims to create a convenient and reasonable method for choosing the optimal parameters of the PSO algorithm, taking into account the topology and parameters of the DC-DC converter and the configuration of solar panels. A new method for selecting the parameters of a buck converter connected to a battery has been presented. The optimal value of the sampling time for the digital MPP controllers, providing their maximum performance; has been determined based on a new methodology. Matlab/Simulink software package is used as the main research tool. The prominent outcomes identify that the modified PSO and its designed parameters best meet the requirements of the MPPT controller for the PV system.
机译:提高光伏(PV)系统效率的重要任务之一是开发和改进最大功率点跟踪算法(MPPT)。这些MPPT算法导致有效地捕获部分阴影的PV阵列的全局最大功率点。其中一个跟踪器是粒子群优化(PSO)算法,是软计算技术之一。传统的基于PSO的跟踪器具有许多优点,例如硬件实现的简单性和从已安装系统的独立性。 PSO实际应用的实际问题是确定其参数,以确保提取全球MPP的高效性。致专用于PSO算法的科学论文的分析表明,目前没有最佳参数和X2019的方法;基于PV系统的基于PSO算法的选择。本文旨在创建一种方便合理的方法来选择PSO算法的最佳参数,考虑到DC-DC转换器的拓扑和参数以及太阳能电池板的配置。已经介绍了用于选择连接到电池的降压转换器的参数的新方法。数字MPP控制器采样时间的最佳值,提供其最大性能;已根据新方法确定。 Matlab / Simulink软件包用作主要的研究工具。突出的结果确定了改进的PSO及其设计参数最佳地满足PV系统的MPPT控制器的要求。

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  • 来源
    《Quality Control, Transactions》 |2020年第2020期|20770-20785|共16页
  • 作者单位

    Natl Res Tomsk Polytech Univ Dept Elect Engn Tomsk 6340350 Russia;

    Natl Res Tomsk Polytech Univ Dept Elect Engn Tomsk 6340350 Russia|Zagazig Univ Dept Elect Power & Machines Engn Zagazig 44511 Egypt;

    Kyushu Univ Dept Elect & Elect Engn Fukuoka 8190395 Japan|Menia Univ Fac Engn Elect Engn Dept Al Minya 61111 Egypt;

    Khalifa Univ Adv Power & Energy Ctr Elect Engn & Comp Sci Dept Abu Dhabi 127788 U Arab Emirates;

    Natl Res Tomsk Polytech Univ Dept Elect Engn Tomsk 6340350 Russia|Zagazig Univ Dept Elect Power & Machines Engn Zagazig 44511 Egypt;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    MPPT; partial shading; PSO; buck converter; battery; PV;

    机译:MPPT;部分遮阳;PSO;降压转换器;电池;光伏;

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