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Joint Controller-Communication Topology Design for Distributed Wide-Area Damping Control of Power Systems

机译:电力系统分布式广域阻尼控制的联合控制器 - 通信拓扑设计

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The recent development and deployment of the synchronized phasor measurement units (PMU) is allowing the wide-area monitoring and control of large-scale power systems. Furthermore, the integration of more communication technologies into the power system is giving an additional degree of freedom to the control design that may improve the performance of the overall system. Small-signal stability is an important requirement for power systems with the increasing number of distributed generation units. The oscillation modes of the power system have to be well damped in order to avoid contingencies such as blackouts. Wide-area controllers based on the real-time PMU measurements operating in centralized, distributed and decentralized manner have been widely proposed to damp the low-frequency oscillation of the large-scale interconnected power system. It has been shown that the damping performance can be improved by using the synchronized PMU data transmitted in real-time via communication network. However, only a few of the proposed methods take the structural constraint of the measurement data transmission into account. In this paper, we propose a method to design a distributed wide-area damping controller together with the communication topology in order to improve the damping performance of the power system. As a design strategy, first a decentralized controller that stabilizes the overall system is designed. Then, the damping performance is improved by designing the distributed control law, i.e. allowing the local controllers to exchange information. The problem is formulated as a mixed-integer optimization. Finally the proposed approach is evaluated in a five machine power system via a numerical simulation.
机译:最近的同步相量测量单元(PMU)的开发和部署允许大型电力系统的广泛监控和控制。此外,将更多通信技术的集成到电力系统中,为控制设计提供了额外的自由度,这些自由度可以提高整个系统的性能。小信号稳定性是具有越来越多的分布式发电单元的电力系统的重要要求。电力系统的振荡模式必须很好地阻尼,以避免诸如停电的突发事件。广泛的控制器基于集中,分布式和分散的方式运行的实时PMU测量,已被广泛提出抑制大型互连电力系统的低频振荡。已经表明,通过使用通信网络实时发送的同步PMU数据,可以改善阻尼性能。然而,只有少数建议的方法考虑了测量数据传输的结构约束。在本文中,我们提出了一种与通信拓扑一起设计分布式广域阻尼控制器的方法,以提高电力系统的阻尼性能。作为一种设计策略,设计了稳定整个系统的分散控制器。然后,通过设计分布式控制法,即允许本地控制器交换信息来改善阻尼性能。该问题被制定为混合整数优化。最后,通过数值模拟在五种机器电力系统中评估所提出的方法。

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