湖南电力 ›› 2026, Vol. 46 ›› Issue (4): 57-68.doi: 10.3969/j.issn.1008-0198.2026.04.009

• 电网运行与控制 • 上一篇    下一篇

计及双域约束的主配微电网风险评估及其协同优化方法

钱军1, 黄际元2, 吴晋波3, 李帅虎4, 郑峻峰2, 李琳2   

  1. 1.国网湖南省电力有限公司,湖南 长沙 410004;
    2.国网湖南省电力有限公司长沙供电分公司,湖南 长沙 410015;
    3.国网湖南省电力有限公司电力科学研究院,湖南 长沙 410208;
    4.长沙理工大学电气与信息工程学院,湖南 长沙 410114
  • 收稿日期:2026-04-10 出版日期:2026-08-25 发布日期:2026-09-11
  • 通信作者: 李帅虎(1981),男,教授,博士,研究方向为电力系统安全稳定运行与控制。
  • 作者简介:钱军(1982),男,高级工程师,博士,主要从事电网运行与控制工作。黄际元(1988),男,高级工程师,博士,主要从事电网运行与控制工作。吴晋波(1981),男,正高级工程师,博士,主要研究方向为电网运行与控制、保护与自动化、新能源与储能应用。郑峻峰(1973),男,高级工程师,本科,主要从事电网运行与控制等工作。李琳(1987),男,高级工程师,硕士,主要从事电网运行与控制等工作。
  • 基金资助:
    湖南省十大技术攻关项目(2025QK1004); 国网湖南省电力有限公司科技项目(5216A525000B)

Risk Assessment and Collaborative Optimization Method of Transmission-Distribution-Microgrid Considering Dual-Domain Constraints

QIAN Jun1, HUANG Jiyuan2, WU Jinbo3, LI Shuaihu4, ZHENG Junfeng2, LI Lin2   

  1. 1. State Grid Hunan Electric Power Co., Ltd., Changsha 410004, China;
    2. State Grid Changsha Power Supply Company, Changsha 410015, China;
    3. State Grid Hunan Electric Power Co., Ltd. Power Research Institute, Changsha 410208, China;
    4. School of Electrical and Information Engineering, Changsha University of Science and Technology, Changsha 410114, China
  • Received:2026-04-10 Online:2026-08-25 Published:2026-09-11

摘要: 海量分散式可再生能源接入低压电网引入了不确定性,造成运行风险日趋复杂与多维化。针对以上问题,提出一种计及微电网可调度域与主配网安全域的多层级风险评估及其协同优化方法。首先,从主网、配网、微电网三个层面构建多层级的风险评估指标体系和框架。其次,建立分散式风电、光伏、负荷及元件故障等关键不确定性因素的随机模型,并采用序贯蒙特卡洛模拟生成系统运行状态集合。然后,构建考虑微电网可调度域与主配网安全域约束的主配微网协同运行优化模型,结合半不变量法与科尼什-费雪(Cornish-Fisher)级数展开实现随机潮流快速求解,并引入机会约束优化调度模型,在保障系统经济运行的同时实现对运行风险的有效管控。最后,基于IEEE 9节点与IEEE 33节点构成的改进主配微网系统进行了方法验证,仿真结果表明,所提方法实现经济效益最优的同时,还能有效控制各层级运行风险水平,为含高比例新能源的主配微电网协同安全运行与风险评估提供了理论支撑与方法参考。

关键词: 主配微电网, 风险评估, 可调度域, 安全域, 协同优化, 随机潮流计算, 机会约束优化

Abstract: To address the security operation risks caused by the complex uncertainties arising from the integration of massive distributed renewable energy sources into low-voltage grids, a multi-layer risk assessment and coordinated optimization method is proposed that accounts for the dispatchable region of microgrids and the security region of transmission-distribution networks. First, a multi-level risk assessment index system and framework are established from the perspectives of the transmission, distribution network, and microgrid. Second, stochastic models for key uncertain factors such as distributed wind power, photovoltaic generation, load, and component failures are developed, and a set of system operational states is generated using sequential Monte Carlo simulation. Then, a collaborative operation optimization model for the transmission, distribution, and microgrid is constructed based on the dispatchable domain of microgrids and the security domain of main and distribution networks. The stochastic power flow is rapidly solved using the semi-invariant method and Cornish-Fisher series expansion, and an opportunity-constrained optimization scheduling model is introduced to ensure economic operation while effectively managing operational risks. Finally, the method is validated using an improved transmission-distribution-microgrid system based on IEEE 9-bus and IEEE 33-bus configurations. The results demonstrate that the proposed method achieves optimal economic benefits while effectively controlling operational risk levels at all levels, providing theoretical support and methodological references for the collaborative operation and risk assessment of main-distribution-microgrids with high renewable energy penetration.

Key words: transmission-distribution-microgrid, risk assessment, dispatchable domain, security domain, collaborative optimization, stochastic power flow calculation, chance-constrained optimization

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