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Dynamic modeling and small signal stability analysis of distributed photovoltaic grid-connected system with large scale of panel level DC optimizers

机译:大型面板级直流优化器的分布式光伏并网系统的动态建模和小信号稳定性分析

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摘要

The distributed maximum power point tracking (DMPPT) technologies, based on a DC optimizer (DCO) for every single photovoltaic (PV) panel, are increasingly proposed to mitigate the waste of solar energy due to the mismatch problems of PV arrays. However, the stability problem of DMPPT based distributed PV grid-connected systems that involve a large amount of DCOs remains to be further studied. Therefore, modeling, deservedly, is the basis for stability analysis. Usually the model of the PV power plant consists of hundreds or even thousands of DCOs, which results in a heavy computation burden during the simulation. To solve the modeling problem, this paper proposes a matrix variables based modeling method for the distributed PV grid-connected system. The core idea of the modeling method is to convert the complex model that contains plenty of PV-DCO generation units to an average model consisting of only two typical submodules, by constructing the block matrix formed variables. In this way, the model has the advantages of good scalability and high simulation efficiency, and can be realized by the vector simulation feature of Matlab/Simulink. Besides, it is easy to obtain the linearization results directly by using the Linearization Toolbox in Simulink, which avoids the complexity of writing programs for linearization calculation when studying the stability of large-scale systems. Based on the average model and corresponding linearization results, the key impacts on the small signal stability of the system are determined via the eigenvalue analysis method and root locus method. It is shown that the total active power output by PV array, the controller parameters of the grid-connected inverter, and the strength of the AC system are critical factors affecting the small signal stability of distributed PV grid-connected system. Different simulation results verify the effectiveness of the proposed approach.
机译:越来越多地提出了基于针对每个单个光伏(PV)面板的DC优化器(DCO)的分布式最大功率点跟踪(DMPPT)技术,以减轻由于PV阵列不匹配问题而造成的太阳能浪费。然而,涉及大量DCO的基于DMPPT的分布式PV并网系统的稳定性问题仍有待进一步研究。因此,建模当之无愧是稳定性分析的基础。通常,光伏电站的模型由数百甚至数千个DCO组成,这在仿真过程中会导致沉重的计算负担。为了解决建模问题,本文提出了一种基于矩阵变量的分布式光伏并网系统建模方法。建模方法的核心思想是通过构造块矩阵形成的变量,将包含大量PV-DCO生成单元的复杂模型转换为仅包含两个典型子模块的平均模型。这样,该模型具有良好的可扩展性和较高的仿真效率,并且可以通过Matlab / Simulink的矢量仿真功能来实现。此外,使用Simulink中的线性化工具箱很容易直接获得线性化结果,从而避免了在研究大型系统稳定性时编写用于线性化计算的程序的复杂性。基于平均模型和相应的线性化结果,通过特征值分析法和根轨迹法确定对系统小信号稳定性的关键影响。结果表明,光伏阵列输出的总有功功率,并网逆变器的控制器参数以及交流系统的强度是影响分布式光伏并网系统小信号稳定性的关键因素。不同的仿真结果验证了该方法的有效性。

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