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Analysis, Design, and Implementation of Virtual Impedance for Power Electronics Interfaced Distributed Generation

机译:电力电子接口分布式发电虚拟阻抗的分析,设计与实现

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摘要

This paper presents a virtual impedance design and implementation approach for power electronics interfaced distributed generation (DG) units. To improve system stability and prevent power couplings, the virtual impedances can be placed between interfacing converter outputs and the main grid. However, optimal design of the impedance value, robust implementation of the virtual impedance, and proper utilization of the virtual impedance for DG performance enhancement are key for the virtual impedance concept. In this paper, flexible small-signal models of microgrids in different operation modes are developed first. Based on the developed microgrid models, the desired DG impedance range is determined considering the stability, transient response, and power flow performance of DG units. A robust virtual impedance implementation method is also presented, which can alleviate voltage distortion problems caused by harmonic loads compared to the effects of physical impedances. Furthermore, an adaptive impedance concept is proposed to further improve power control performances during the transient and grid faults. Simulation and experimental results are provided to validate the impedance design approach, the virtual impedance implementation method, and the proposed adaptive transient impedance control strategies.
机译:本文提出了一种用于电力电子接口分布式发电(DG)单元的虚拟阻抗设计和实现方法。为了提高系统稳定性并防止电源耦合,可以在接口转换器输出和主电网之间放置虚拟阻抗。但是,阻抗值的最佳设计,虚拟阻抗的可靠实现以及虚拟阻抗的适当利用以提高DG性能,这对于虚拟阻抗概念至关重要。本文首先研究了不同运行模式下微电网的柔性小信号模型。基于已开发的微电网模型,考虑了DG单元的稳定性,瞬态响应和功率流性能,确定了所需的DG阻抗范围。还提出了一种鲁棒的虚拟阻抗实现方法,与物理阻抗的影响相比,该方法可以减轻由谐波负载引起的电压失真问题。此外,提出了一种自适应阻抗概念,以进一步改善瞬态和电网故障期间的功率控制性能。通过仿真和实验结果验证了阻抗设计方法,虚拟阻抗实现方法以及所提出的自适应瞬态阻抗控制策略。

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