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Stochastic Distributed Secondary Control for AC Microgrids via Event-Triggered Communication

机译:通过事件触发通信的AC微电网的随机分布二次控制

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This paper proposes a stochastic distributed secondary control scheme for both frequency/voltage restoration and optimal active power sharing (e.g., minimize the total generation cost) of ac microgrids by employing event-triggered communication mechanism in noisy environments. Compared with existing ideal and periodic communication among distributed generations (DG), the proposed stochastic distributed secondary control scheme can achieve mean-square synchronization for frequency and voltage restoration of DGs and the optimal active power sharing for their economic operation through a sparse communication network, even though the communication channels are susceptible to noise interferences and limited bandwidth constraints. The stochastic distributed control protocols are designed to be employed into the secondary control stage for microgrids, which is a fully distributed control paradigm. With the proposed control protocols, control deviations of frequency and voltage produced during the primary control stage can be well remedied and the optimal active power sharing for their economic operation can be well achieved simultaneously. Furthermore, the graph theory, stochastic theory and Lyapunov functional approach are employed to derive the stability and convergence analysis of the proposed dynamic event-triggered conditions considering noise interferences. Simulation results on an islanded microgrid test system are presented to demonstrate the effectiveness of the proposed control protocols.
机译:本文通过在嘈杂环境中采用事件触发的通信机制,提出了一种随机分布的二次控制方案,用于频率/电压恢复和最佳有效电力共享(例如,最小化AC微电网的总生成成本)。与分布式代代(DG)之间存在的理想和周期性通信相比,所提出的随机分布式二级控制方案可以通过稀疏通信网络实现DG的频率和电压恢复和最佳有效功率共享的平均方形同步,尽管通信信道易受噪声干扰和有限的带宽约束。随机分布式控制协议被设计为用于微电网的二级控制阶段,这是一个完全分布的控制范例。利用所提出的控制协议,在主控制阶段期间产生的频率和电压的控制偏差可以良好地弥补,并且可以同时实现其经济操作的最佳有效功率分配。此外,采用了图形理论,随机理论和Lyapunov功能方法来导出考虑噪声干扰的所提出的动态事件触发条件的稳定性和收敛性分析。展示了岛状微电网测试系统的仿真结果证明了所提出的控制协议的有效性。

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