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首页> 外文期刊>IEEE Transactions on Industrial Electronics >On Autonomous Large-Signal Stabilization for Islanded Multibus DC Microgrids: A Uniform Nonsmooth Control Scheme
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On Autonomous Large-Signal Stabilization for Islanded Multibus DC Microgrids: A Uniform Nonsmooth Control Scheme

机译:关于孤岛多态DC微电网的自主大信号稳定:均匀的非流动控制方案

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摘要

Different from single-bus dc microgrids (MGs), a multibus MG normally bridge multiple dc buses via a complex line impedance network. This intricate configuration together with tickling constant power loads may cause severe stability issues. For system stability improvement, conventional ways include designing small-signal stabilizers in a decentralized way and constructing large-signal stabilizers by solving Lyapunov equation in a central controller. Note that centralized methods may be vulnerable to single point of failures, while decentralized patterns are commended to reinforce MG reliability and scalability. To implement large-signal stabilization in decentralized mechanisms, which has rarely been investigated in the existing literature, a novel uniform nonsmooth control scheme (UNCS) is proposed, in this article. UNCS has the following fourfold advantages. First, UNCS helps to express commonly used dc/dc converters, boost, buck, and buck-boost, into a uniform model. The model substantially facilitates a uniform stabilizer design that accommodates the preceding three converters despite their differences in topology. Second, UNCS assigns each converter based distributed generator (DG) with a composite large-signal stabilizer comprising a nonsmooth observer and a nonsmooth controller. The controller neutralizes the disturbances estimated by the observer, and it also rigorously stabilizes the internal states in DG uniform model. Third, the stabilizer also provides an additional control degree of freedom, a finetuning factor, to refine DG dynamic responses to meet high requirements for voltage and power qualities. Fourth, when numerous DGs with the proposed stabilizer congregate to build a multibus MG, the overall system large-signal stabilization is autonomously attained without communication links, which is mathematically justified by Lyapunov stability analyses. As such, DGs are allowed to randomly plug in/out without worrying about impairing system level stability. Simulations help to properly select relevant key parameters. Experiments show that UNCS outperforms the standardly designed PI controls, and it will stabilize the multibus MG in a large operation range.
机译:与单母总线DC微电网(MGS)不同,多距MG通常通过复线阻抗网络桥接多个直流总线。这种复杂的配置与速率恒定功率负载一起可能导致严重的稳定性问题。为了改进系统稳定性,传统方式包括以分散的方式设计小信号稳定器,并通过求解中央控制器中的Lyapunov方程来构建大信号稳定器。注意,集中式方法可能很容易受到单点故障的影响,而分散的模式是值得支持的,以加强MG可靠性和可扩展性。为了实现分散机制的大信号稳定,在本文中提出了一种新颖的均匀的非光控制方案(UNC)。 UNCS具有以下四倍优势。首先,UNCS有助于将常用的DC / DC转换器,升压,降压和降压 - 提升到统一的模型中。该模型基本上便于均匀的稳定器设计,其尽管有它们拓扑的差异,但是尽管它们的拓扑差异。其次,UNC分配基于转换器的分布式发电机(DG),其中复合大信号稳定器包括不包括非流动观测器和非流动控制器。控制器中和由观察者估计的扰动,并且还严格稳定在DG统一模型中的内部状态。第三,稳定剂还提供了额外的控制自由度,尖端系数,以优化DG动态响应,以满足电压和功率质量的高要求。第四,当众多DG与所提出的稳定器聚集建立多态MG时,整体系统大量信号稳定性在没有通信链路的情况下自主实现,这是由Lyapunov稳定性分析的数学辩护。因此,允许DGS随机插入/输出,而不担心损害系统级稳定性。仿真有助于正确选择相关的关键参数。实验表明,UNCS优于标准设计的PI控制,它将在大型操作范围内稳定多态MG。

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