A distributed coordinated control strategy for isolated AC microgrids based on consensus algorithm considering communication delay

IF 1.8 3区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC International Journal of Circuit Theory and Applications Pub Date : 2024-08-04 DOI:10.1002/cta.4210
Chaofeng Yan, Qirui Li, Xiaomeng Zhang, Yang Han, Ping Yang, Amr S. Zalhaf
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Abstract

In the multi‐paralleled converter microgrid system, the traditional hierarchical control strategy can eliminate the bus voltage amplitude and frequency deviation from the rated value. However, isolated AC microgrids may face extreme scenarios such as communication delays and interruptions in data transmission due to the use of low‐bandwidth communication (LBC) lines. Additionally, the inconsistent line impedance of each distributed generation (DG) unit may result in the inaccurate division of reactive power in multi‐paralleled converter systems, thus affecting system stability. To address these issues, this paper presents a distributed coordinated control strategy for isolated AC microgrids based on the consensus algorithm. The proposed strategy first replaces LBC lines with a filter to alleviate the effects of communication delays. A small‐signal model is established in its state space, and stability of the microgrid system under the proposed control strategy is verified through eigenvalue analysis. Furthermore, based on the above theoretical analysis, a consensus algorithm is introduced, and a distributed control strategy for isolated AC microgrids based on the consensus algorithm is proposed to solve the issue of inaccurate equalization of the system's reactive power. Finally, factors that influence the dynamic convergence performance of the consensus algorithm are analyzed through simulation in PLECS software. Also, the maximum tolerable communication delays of the microgrid system under different communication topologies are also compared, and the system's robustness is evaluated under the condition of sudden communication interruption in a DG unit and sudden weather variation. These analyses confirmed the robustness of the proposed strategy against communication delays, output power fluctuation, and communication interruptions.
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基于考虑通信延迟的共识算法的隔离交流微电网分布式协调控制策略
在多并联变流器微电网系统中,传统的分层控制策略可以消除母线电压幅值和频率偏离额定值的情况。然而,由于使用低带宽通信线路(LBC),隔离交流微电网可能会面临通信延迟和数据传输中断等极端情况。此外,由于每个分布式发电(DG)单元的线路阻抗不一致,可能导致多并联变流器系统中的无功功率划分不准确,从而影响系统稳定性。为解决这些问题,本文提出了一种基于共识算法的隔离交流微电网分布式协调控制策略。建议的策略首先用滤波器取代 LBC 线路,以减轻通信延迟的影响。在其状态空间中建立了小信号模型,并通过特征值分析验证了微电网系统在拟议控制策略下的稳定性。此外,在上述理论分析的基础上,引入了共识算法,并提出了基于共识算法的隔离交流微电网分布式控制策略,以解决系统无功功率均衡不准确的问题。最后,通过在 PLECS 软件中进行仿真,分析了影响共识算法动态收敛性能的因素。此外,还比较了微电网系统在不同通信拓扑结构下可容忍的最大通信延迟,并评估了系统在风电机组通信突然中断和天气突变情况下的鲁棒性。这些分析证实了所提出的策略对通信延迟、输出功率波动和通信中断的鲁棒性。
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来源期刊
International Journal of Circuit Theory and Applications
International Journal of Circuit Theory and Applications 工程技术-工程:电子与电气
CiteScore
3.60
自引率
34.80%
发文量
277
审稿时长
4.5 months
期刊介绍: The scope of the Journal comprises all aspects of the theory and design of analog and digital circuits together with the application of the ideas and techniques of circuit theory in other fields of science and engineering. Examples of the areas covered include: Fundamental Circuit Theory together with its mathematical and computational aspects; Circuit modeling of devices; Synthesis and design of filters and active circuits; Neural networks; Nonlinear and chaotic circuits; Signal processing and VLSI; Distributed, switched and digital circuits; Power electronics; Solid state devices. Contributions to CAD and simulation are welcome.
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