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Modeling and Experimental Validation of Power Electronic Loads and DERs For Microgrid Islanding Simulations

机译:微电网模拟电力电子负荷的建模与实验验证

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Microgrid islanding can improve the reliability of distribution networks by enabling load to be supplied even after a fault has occured nearby. The generation and load devices in microgrids are commonly interfaced by power electronics, causing a lack of inertia in the network. When microgrids transition from grid-connected to islanded operation after a fault, fast dynamics occur which have to be evaluated to assess stability during and after the transition. Their stability can be evaluated by time-domain simulations, however detailed and validated models of power electronic loads and distributed energy resources are required. This paper proposes component-based models of different types of power electronic loads, and single and three phase distributed energy resources. The models are validated with a variety of voltage and frequency transient experiments. A case study is performed where a modified version of the Cigre European LV residential network is islanded after a fault occurs. The results of the proposed, constant impedance and exponential load models are compared. The results indicate that the proposed models should be used for accurate analysis of the voltage and frequency stability during microgrid islanding simulations.
机译:MicroGrid islanding可以通过使载荷能够在附近发生故障后提供负载来提高分配网络的可靠性。微电网中的生成和负载装置通常通过电力电子器件连接,导致网络中缺乏惯性。当Microgrids在故障后从网格连接到岛状操作时,发生了快速动态,必须评估在过渡期间和之后评估稳定性。可以通过时域模拟来评估它们的稳定性,但是需要提供的电力电子负载和分布式能源的详细和验证模型。本文提出了基于组件的不同类型电力载荷的模型,以及单一和三相分布式能源。该模型以各种电压和频率瞬态实验验证。在发生故障后岛屿的CIGRE欧洲LV住宅网络的修改版本进行了案例研究。比较了提出的恒定阻抗和指数载荷模型的结果。结果表明,所提出的模型应用于微电网岛模拟期间的电压和频率稳定性的准确分析。

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