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Hierarchical frequency control strategy of hybrid droop/VSG-based islanded microgrids

机译:基于混合下垂/ VSG的岛状微电网的分层频率控制策略

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Compared to the conventional centralized power system, in which synchronous generators with speed control offering favorable dynamic behaviors, the islanded microgrid dominated by distributed generators may encounter severe frequency instability. Thus droop control and virtual synchronous generator control have been proposed to design the primary frequency level of the islanded microgrids. In this context, both of these two control strategies will coexist and interact with each other in a microgrid due to their different reaction speed. This paper focuses on the frequency stability of islanded microgrids. The interactions between virtual synchronous generator-based and droop-based parallel inverters are firstly investigated. The small-signal model is used to study the effects of variation of important control parameters. Then the secondary level is also established to compensate the frequency deviation. The internal model control based strategy is used to improve robustness for communication delays of the secondary level. Furthermore, a traditional PI controller is also proposed based on robust H infinity method for comparison. An islanded microgrid test system including four distributed generators dominated by different control strategies is built in PSCAD/EMTDC to verify the proposed control structure. (C) 2017 Elsevier B.V. All rights reserved.
机译:与传统的集中式电力系统相比,在传统的集中式电力系统中,具有速度控制功能的同步发电机具有良好的动态性能,而由分布式发电机主导的孤岛微电网可能会遇到严重的频率不稳定。因此,已经提出了下垂控制和虚拟同步发电机控制来设计孤岛微电网的主频率水平。在这种情况下,这两种控制策略由于其不同的反应速度,将在微电网中共存并相互影响。本文关注孤岛微电网的频率稳定性。首先研究了基于虚拟同步发电机和基于下垂的并联逆变器之间的相互作用。小信号模型用于研究重要控制参数变化的影响。然后,还建立了次级电平以补偿频率偏差。基于内部模型控制的策略用于提高二级通信延迟的鲁棒性。此外,还提出了一种基于鲁棒H无限方法的传统PI控制器进行比较。在PSCAD / EMTDC中建立了一个孤岛微电网测试系统,该系统包括由四个不同控制策略主导的分布式发电机,以验证所提出的控制结构。 (C)2017 Elsevier B.V.保留所有权利。

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