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首页> 外文期刊>IEEE Transactions on Control Systems Technology >A Distributed Frequency Regulation Architecture for Islanded Inertialess AC Microgrids
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A Distributed Frequency Regulation Architecture for Islanded Inertialess AC Microgrids

机译:孤岛式惯性交流微电网的分布式调频架构

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We address the problem of frequency regulation in islanded ac microgrids with no inertia, i.e., those consisting entirely of generators interfaced through power electronics. The control architecture we propose to achieve this is designed to drive the average frequency error to zero while ensuring that the frequency at every bus is equal and that the operating point that results is stable. We also introduce a distributed implementation of the proposed control architecture that relies on a combination of three distributed algorithms. Two of the algorithms, which are well-established consensus-type algorithms, allow the generators and loads to acquire global information needed for making control decisions; the third algorithm, which we propose herein, enables the generators to obtain output values that balance the total demand for load without violating line flow constraints. Collectively, these algorithms eliminate the need for a centralized entity with complete knowledge of the network, its topology, or the capabilities or properties of the generators and loads therein. Moreover, the distributed implementation we propose relies on minimal measurements, requiring only that the power injection at each bus be measured. To verify our proposed control architecture and the algorithms on which its distributed implementation relies, we analytically show that the resulting closed-loop system is stable and establish convergence of our proposed algorithm. We also illustrate the features of the architecture using numerical simulations of three test cases applied to 6- and 37-bus networks.
机译:我们解决了无惯性的孤岛交流微电网中的频率调节问题,即完全由通过电力电子接口连接的发电机组成的交流微电网。我们为实现此目的而提出的控制体系结构旨在将平均频率误差驱动为零,同时确保每条总线上的频率相等,并且确保得出的工作点稳定。我们还介绍了所提出的控制体系结构的分布式实现,该体系结构依赖于三种分布式算法的组合。其中两种算法是公认的共识型算法,它们允许生成器和负载获取进行控制决策所需的全局信息。我们在此处提出的第三种算法使发电机能够在不违反线路流量约束的情况下获得平衡总负载需求的输出值。总而言之,这些算法消除了对集中式实体的需要,该集中式实体对网络,其拓扑结构,发电机和其中的负载的能力或特性有全面的了解。此外,我们提出的分布式实现依赖于最小的测量,仅需要测量每个总线上的功率注入。为了验证我们提出的控制体系结构及其分布式实现所依赖的算法,我们通过分析证明了所得的闭环系统是稳定的,并建立了我们提出的算法的收敛性。我们还通过对应用于6总线和37总线网络的三个测试案例的数值模拟来说明该体系结构的特征。

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