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Successive-Approximation-Based Virtual Impedance Tuning Method for Accurate Reactive Power Sharing in Islanded Microgrids

机译:基于近似的基于近似的虚拟阻抗调谐方法,用于孤岛微电网中的准确无功分享

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摘要

Due to the mismatched line impedances in islanded microgrids, distributed generation units with conventional droop tend to have barely satisfactory reactive power sharing accuracy. To handle this problem, this article proposes a virtual impedance tuning method based on successive approximation to accurately compensate the mismatch among line impedances. First, in each distributed generation (DG) unit, an adaptive virtual impedance regulation based on the error between the actual output reactive power and its reference is established and combined with the conventional Q-V droop control. Then, these two control schemes operate alternately for several cycles, and in each cycle, the reactive power reference of the virtual impedance regulation is updated by the latest estimate from the Q-V droop control. Therefore, the virtual impedance of each DG unit will be tuned successively to an appropriate value to achieve accurate power sharing among DG units based on local information. Meanwhile, to ensure all the DG units switching between these two control schemes synchronously, a common triggering signal from the microgrid central controller is needed to start the internal time sequence of each DG unit. Furthermore, a comprehensive design procedure for key parameters is presented based on convergence analysis and small-signal modeling of the tuning process. Finally, the effectiveness of the proposed method is verified by simulation and experimental results. This article is accompanied by a video demonstrating the virtual impedance tuning process.
机译:由于岛状微电网中的线路阻抗不匹配,具有常规下垂的分布式发电单元往往具有几乎没有令人满意的无功分享精度。为了处理这个问题,本文提出了一种基于连续近似的虚拟阻抗调谐方法,以准确地补偿线路阻抗之间的不匹配。首先,在每个分布生成(DG)单元中,建立基于实际输出无功功率及其参考之间的误差的自适应虚拟阻抗调节,并与传统的Q-V下垂控制组合。然后,这两个控制方案可交替地运行几个周期,并且在每个周期中,通过从Q-V下垂控制的最新估计来更新虚拟阻抗调节的无功功率参考。因此,每个DG单元的虚拟阻抗将连续地调谐到适当的值,以基于本地信息实现DG单元之间的准确功率共享。同时,为了确保所有DG单元在同步切换这两个控制方案之间,需要来自微电网中央控制器的公共触发信号来启动每个DG单元的内部时间序列。此外,基于调谐过程的收敛分析和小信号建模,提出了一种综合设计程序。最后,通过模拟和实验结果验证了所提出的方法的有效性。本文伴随着演示虚拟阻抗调谐过程的视频。

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