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考虑微电网自主性的直流微电网群延迟容忍分层分布式控制
Delay-tolerant hierarchical distributed control for DC microgrid clusters considering microgrid autonomy
| 作者 | Yongpan Chen · Jinghan Zhao · Keting Wan · Miao Yu |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 378 卷 |
| 技术分类 | 控制与算法 |
| 技术标签 | 微电网 可靠性分析 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | A novel hierarchical distributed control method for DC MGCs is proposed. |
语言:
中文摘要
摘要 微电网群(MGC)由地理上相邻且相互连接的微电网(MG)构成,可有效提高供电可靠性。为在实现微电网间协调运行的同时充分发挥各微电网的自主性,本文提出一种适用于直流MGC的、支持微电网自主-协同模式切换的分层分布式控制方法。所提方法不仅能够实现微电网之间的电流比例分配与公共母线电压调节,还可通过建立或断开微电网间的通信链路,使各微电网在自主模式与协同模式之间灵活切换。此外,考虑到微电网间通信链路时延会影响所提控制方法中的多个控制回路,本文提出一种基于Padé逼近和特征值谱比较的时延相关稳定性分析方法。通过稳定性分析确定了系统的时延裕度(TDM),并识别出基于比例-积分(PI)一致性算法的观测器是决定TDM的关键环节。在此基础上,引入散射变换(ST)以提升观测器在存在时延情况下的稳定性,从而增强直流MGC的时延裕度;该结论通过融合节点变量与边变量的新系统模型的稳定性分析得以验证。最后,通过硬件在环(HIL)实验和MATLAB/Simulink仿真验证了所提控制方法的性能以及稳定性分析结果的有效性。
English Abstract
Abstract A microgrid cluster (MGC) is formed by interconnected geographically adjacent microgrids (MGs), which can effectively improve power supply reliability. To fulfill the requirements of coordination between MGs while exerting the autonomy ability of each MG, this paper proposes a hierarchical distributed control method for DC MGCs with MG autonomous-cooperative mode switching. The proposed method can not only realize the proportional current sharing between the MGs and the voltage regulation of the common bus but also allow MGs to operate in autonomous or cooperative mode by establishing and disconnecting the inter-MG communication links. In addition, considering that the delay of inter-MG communication links affects multiple control links of the proposed control method, a delay-dependent stability analysis method based on Padé approximation and eigenvalue spectrum comparison is proposed. By stability analysis, the time delay margin (TDM) is determined, and the key link that determines the TDM is identified as the observer based on the proportional-integral (PI) consensus algorithm. On this basis, the scattering transformation (ST) is introduced to improve the stability of the observer under delay and thus enhance the TDM of DC MGCs, which is confirmed by stability analysis based on a new system model integrating node variables and edge variables. Finally, the performance of the proposed control method and stability analysis results are verified by hardware-in-loop (HIL) tests and MATLAB/Simulink simulations
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SunView 深度解读
该分层分布式控制技术对阳光电源微电网集群方案具有重要价值。可应用于ST系列储能变流器和PowerTitan系统的多站协同控制,实现微网间功率按比例分配与母线电压稳定。基于Padé近似的时延稳定性分析方法可优化iSolarCloud平台的通信架构设计,提升分散式光储电站的协调可靠性。散射变换增强时延容忍度的思路,可改进GFM控制策略在弱通信条件下的鲁棒性,特别适用于海外大型地面电站和工商业微网集群场景,增强系统自治与协同切换能力。