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Optimal Decentralized Coordination of Voltage-Controlled Sources in Islanded Microgrids

机译:岛状微电网电压控制源的最佳分散协调

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The recent amalgamation of advanced communication and actuation capabilities into power entities is fundamental for enabling the design of an adaptive, efficient and resilient power grid. In this paper, we focus specifically on optimal and decentralized microgrid coordination that accounts for steady-state physical grid constraints. Actuating agents representing voltage-controlled distributed energy resources (DERs) in the microgrid exchange information with one another to iteratively compute the optimal local voltage set point. In order to account for physical inter dependencies in the microgrid in a tractable manner, a transformation is applied to the three-phase abc representation of voltage and current to the synchronously rotating dq frame of reference. Resulting linear steady-state voltage and current equations allow for the decomposition of the optimal coordination problem that can be solved by every actuating agent in a highly granular manner. Theoretical and practical studies highlight the effective performance of the proposed algorithm.
机译:最近对电力实体进行高级通信和致动能力的融合是实现自适应,高效和弹性电网的设计。在本文中,我们专注于最佳和分散的微电网协调,该协调占稳态物理电网约束。在微电网交换信息中表示电压控制的分布能量资源(DER)的致动代理,以彼此迭代地计算最佳局部电压设定点。为了以易于移动的方式考虑微电网中的物理差异,将变换应用于三相 abc 表示电压和电流与同步旋转的电流 dq 参照系。产生的线性稳态电压和电流方程允许通过每个致动剂以高粒状的方式解决的最佳配位问题的分解。理论和实践研究突出了所提出的算法的有效性能。

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