东北大学学报(自然科学版) ›› 2025, Vol. 46 ›› Issue (6): 16-25.DOI: 10.12068/j.issn.1005-3026.2025.20240006

• 信息与控制 • 上一篇    下一篇

动态事件触发下直流微电网分布式二次控制

孟范伟1, 邰源政1, 张煜1, 庞爱平2   

  1. 1.东北大学秦皇岛分校 控制工程学院,河北 秦皇岛 066004
    2.贵州大学 电气工程学院,贵州 贵阳 550025
  • 收稿日期:2024-01-03 出版日期:2025-06-15 发布日期:2025-09-01
  • 作者简介:孟范伟(1981—),男,黑龙江青冈人,东北大学秦皇岛分校副研究员.
  • 基金资助:
    国家自然科学基金资助项目(12162007);引力波探测专项项目(2020YFC2201000)

Distributed Secondary Control for DC Microgrid Under Dynamic Event Trigger

Fan-wei MENG1, Yuan-zheng TAI1, Yu ZHANG1, Ai-ping PANG2   

  1. 1.School of Control Engineering,Northeastern University at Qinhuangdao,Qinhuangdao 066004,China
    2.The Electrical Engineering College,Guizhou University,Guiyang 550025,China. Corresponding author: TAI Yuan-zheng,E-mail: 2272290@stu. neu. edu. cn
  • Received:2024-01-03 Online:2025-06-15 Published:2025-09-01

摘要:

针对孤岛直流微电网中二次控制问题,以含有多个分布式电源的直流微电网为研究对象,提出了一种基于动态事件触发机制的分布式二次控制策略.在分布式二次控制的基础上,对每个分布式电源的输出平均电压和比例电流分别设计动态事件触发条件,不但减小了由下垂增益引起的直流母线电压和标称值的偏差,而且维持了电流分配精度,并大大节约了通信资源、减少了通信冗余.设计的事件触发条件包含一个动态项,事件触发阈值会随着动态项改变而改变,有效地减少了控制器的更新频率.通过Lyapunov稳定理论证明了事件触发机制的可行性,并证明了不存在Zeno行为.最后,利用MATLAB/Simulink搭建仿真模型,验证了控制策略的有效性.

关键词: 直流微电网, 分布式二次控制, 动态事件触发机制, 通信冗余, 电压调节, 电流分配

Abstract:

Aiming at the secondary control issues in islanded DC microgrids, a distributed secondary control strategy based on a dynamic event-triggered mechanism is proposed for DC microgrid containing multiple distributed generators. Building upon distributed secondary control, dynamic event-triggered conditions are designed for both the output average voltage and proportional current of each DG. This approach not only mitigates deviations between DC bus voltage and the nominal value caused by droop gains but also maintains current sharing accuracy while significantly conserving communication resources and reducing redundancy. The designed event-triggered conditions incorporate a dynamic term that adaptively adjusts event-triggered thresholds, effectively decreasing controller update frequency. The feasibility of this event-triggered mechanism is rigorously proven through Lyapunov stability theory, with the absence of Zeno behavior being guaranteed. Finally, a simulation model developed in MATLAB/Simulink validates the effectiveness of the proposed control strategy.

Key words: DC microgrid, distributed secondary control, dynamic event-triggered mechanism, communication redundancy, voltage adjustment, current distribution

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