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Synchronous Islanded Operation of an Inverter Interfaced Renewable Rich Microgrid using Synchrophasors

机译:使用同步相量的逆变器接口可再生丰富微电网的同步孤岛操作

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摘要

This paper describes a novel strategy for microgrid operation and control, which enables a seamless transition from grid connected mode to islanded mode, and restoration of utility supply, without loss or disruption to loads sensitive to frequency or phase angle dynamics. A simulation study is conducted on a microgrid featuring inverter connected renewable generation, and power electronic interfaced loads. Therefore, the microgrid inherently has low inertia, which would subsequently affect the dynamic characteristics of the microgrid, in particular during mode transition. The microgrid is controlled by means of synchrophasor data to achieve synchronous island operation, enabling the microgrid to track the utility frequency and phase angle. The simulation includes synchrophasor acquisition and telecoms delays, allowing for detailed investigation of the microgrid dynamics under various mode transition scenarios, including the risk of commutation failure of the inverter sources. The proposed method is demonstrated to successfully maintain a microgrid in synchronism with the main utility grid after the transition to islanded mode without significant impact on various equipment connected to the microgrid. Thus, synchronous island operation of low inertia microgrids is feasible. This study also showed that utility supply could be seamlessly restored if the microgrid is operated as a synchronous island.
机译:本文介绍了一种用于微电网运行和控制的新颖策略,该策略可实现从并网模式到孤岛模式的无缝过渡,并恢复公用事业供应,而不会损失或干扰对频率或相位角动态敏感的负载。在微电网上进行了仿真研究,该微电网具有逆变器连接的可再生能源发电以及电力电子接口负载。因此,微电网固有地具有低惯性,这将随后影响微电网的动态特性,特别是在模式转换期间。微电网通过同步相量数据进行控制,以实现同步孤岛运行,从而使微电网能够跟踪效用频率和相角。该仿真包括同步相量获取和电信延迟,从而允许对各种模式转换情况下的微电网动力学进行详细研究,包括逆变器源换相失败的风险。证明了所提出的方法可以在过渡到孤岛模式后与主公用电网保持成功的微电网同步,而不会对连接到该微电网的各种设备产生重大影响。因此,低惯性微电网的同步孤岛运行是可行的。这项研究还表明,如果微电网作为同步岛运行,公用事业供应可以无缝恢复。

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