面向韧性提升的主动配电网灵活调度与故障修复协同策略

刘文泽, 陈珂瑶, 成润婷, 羿应棋, 卢洪鑫, 张勇军

电力建设 ›› 2025, Vol. 46 ›› Issue (11) : 10-23.

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PDF(2291 KB)
电力建设 ›› 2025, Vol. 46 ›› Issue (11) : 10-23. DOI: 10.12204/j.issn.1000-7229.2025.11.002
源网荷储新型配电系统规划运行关键技术·栏目主持 董旭柱、尚磊、李红军·

面向韧性提升的主动配电网灵活调度与故障修复协同策略

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A Coordinated Strategy of Flexible Dispatch and Fault Repair for Active Distribution Networks Towards Resilience Enhancement

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摘要

【目的】 针对极端灾害下中低压配电网的快速恢复与韧性需求,提出一种主动配电网灵活调度与故障修复协同策略。【方法】 首先构建涵盖负荷恢复效率、电压稳定性及社会经济损失的多维韧性评估框架;其次建立计及用户侧柔性资源与配电网网架的灵活调度模型,采用二阶锥优化与并行自适应蚁群算法,实现关键负荷优先恢复与电压质量优化;进而针对故障修复问题,设计改进哈里斯鹰算法优化抢修队修复顺序;最终通过配电网灵活调度与故障修复协同模型,提升配电网韧性。【结果】 仿真结果表明所提策略负荷平均恢复速度明显提高,节点电压波动更小,社会经济损失比其他策略下降约80%;改进哈里斯鹰算法在收敛速度与寻优精度上明显优于其他算法。【结论】 建立的主动配电网调度-抢修双层优化模型,可以平衡恢复速度与运行稳定性,提升配电网韧性。

Abstract

[Objective] To address the rapid recovery and resilience demands of MV/LV distribution networks in extreme disaster environments, a coordinated strategy integrating the flexible dispatch of active distribution networks and fault repair is proposed. [Methods] First, a multidimensional resilience assessment framework encompassing load restoration efficiency, voltage stability, and socioeconomic loss was constructed. Second, a flexible dispatch model considering user-side flexible resources and the distribution network topology was established, and second-order cone programming and a parallel adaptive ant colony optimization algorithm were employed to achieve the prioritized restoration of critical loads and optimization of the voltage quality. Subsequently, for the fault repair problem, an improved Harris hawks optimization algorithm was designed to optimize the repair sequence of a single repair crew. Finally, a resilience enhancement strategy was formulated through a coordinated optimization model integrating the flexible dispatch of the distribution network and fault repair. [Results] Simulation results showed that the proposed strategy significantly improved the average load restoration speed, resulted in smaller node voltage fluctuations, and reduced socioeconomic losses by approximately 80% compared with other strategies. The improved Harris hawks optimization algorithm was significantly superior to the other algorithms in terms of the convergence speed and optimization accuracy.[Conclusions] The bi-level optimization model established for the dispatch and repair of active distribution networks in this study balanced the restoration speed with operational stability and significantly enhanced the distribution network resilience.

关键词

主动配电网 / 韧性提升 / 柔性资源 / 灵活调度 / 故障修复 / 双层优化模型

Key words

active distribution network / resilience enhancement / flexible resources / flexible dispatch / fault restoration / bi-level optimization model

引用本文

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刘文泽, 陈珂瑶, 成润婷, . 面向韧性提升的主动配电网灵活调度与故障修复协同策略[J]. 电力建设. 2025, 46(11): 10-23 https://doi.org/10.12204/j.issn.1000-7229.2025.11.002
LIU Wenze, CHEN Keyao, CHENG Runting, et al. A Coordinated Strategy of Flexible Dispatch and Fault Repair for Active Distribution Networks Towards Resilience Enhancement[J]. Electric Power Construction. 2025, 46(11): 10-23 https://doi.org/10.12204/j.issn.1000-7229.2025.11.002
中图分类号: TM732   

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Extreme disasters such as earthquakes can cause severe damage to active distribution networks (ADN) and transportation networks. These disasters can lead to road damage, congestion, and large-scale power outage, which makes it difficult to restore power supply to the power grid. In this study, an ADN dynamic collaborative recovery strategy is proposed based on the characteristics of the traffic network and ADN after an earthquake. The proposed strategy integrates finite source and load resources, network reconstruction, and rush repair scheduling. First, a joint disaster damage model of roads and lines of the transportation network was constructed based on the relationship between the transportation network and ADN that is difficult to separate and map to each other after the earthquake. A model of the traffic rush repair travel time of the transportation network was established considering the comprehensive influence of the traffic capacity and traffic flow, and the ADN resilience index combining the time demand and load importance. Second, an ADN hierarchical dynamic cooperative restoration optimization model reflecting the post-earthquake traffic network conditions was established. The outer layer was targeted at determining the maximum resilience index and minimum total emergency repair time, whereas the inner layer was targeted at minimizing economic losses and weighted switch operation times. Third, the improved grey wolf optimization algorithm was used to solve the proposed model, and resources such as multi-type power generation, emergency demand response load, network reconstruction and emergency repair team were coordinated and optimized to improve the resilience of ADNs after earthquakes. Finally, the feasibility and effectiveness of the proposed strategy are verified using an example analysis of the earthquake damage scenario.

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摘要
近年来,电网的节能降损工作受到广泛关注。随着灵活调节资源大规模接入配电网,充分挖掘灵活调节资源的降损潜力显得至关重要。提出一种面向降损场景的移动储能与网络重构两阶段协同优化策略:第一阶段,采用场景分析法刻画源荷不确定性,以综合网损最小为目标建立网络重构模型,并求解最优重构方案。由于配电网节点较多,为缩小搜索范围提升求解效率,提出一种网损灵敏度分析方法,并结合重构方案为移动储能预先筛选充放电节点集合。在第二阶段,以配电网网损及移动储能通行成本最小为目标函数,综合考虑移动储能的连接/通行状态约束、充放电功率/容量约束和电力网的功率平衡、潮流安全约束,构建交通网-电力网融合的移动储能充放电调度模型,并调用CPLEX求解器求解移动储能的通行及充放电功率调度方案。最后结合IEEE 33节点配电系统进行仿真分析,仿真结果表明有功网损降低552.17 kWh,降损幅度达31.9%,验证了所提策略的有效性。
LI Zhengqi, CAI Ye, TANG Xiafei, et al. Collaborative optimization strategy of mobile energy storage devices and distribution network reconfiguration for power loss reduction scenarios[J]. Electric Power Construction, 2023, 44(9): 137-148.

In recent years, the energy savings and loss reduction of power grids have been widely studied. As flexible regulated resources gain large-scale access to distribution networks, exerting the loss reduction potential of flexibly regulated resources by proposing a mobile energy storage device (MESD) and a network reconfiguration collaborative optimization strategy for loss reduction scenarios becomes necessary. The collaborative optimization strategy is divided into two stages. In the first stage, the source-load uncertainty is characterized by the scenario analysis method, and the network reconfiguration model is established with the minimum network loss as the objective function to obtain the network reconfiguration scheme. Owing to the large number of distribution network nodes, a network loss sensitivity analysis method is proposed to narrow the search range in order to enhance the efficiency of the solution, and the above reconfiguration scheme is combined with it to pre-screen the charging/discharging node set for MESD. In the second stage, the objective is to minimize the network loss of the distribution network and the traffic cost of mobile energy storage by considering the connection/operation state constraint, charging/discharging power or capacity constraint of the MESD, and the power balance and power flow safety constraint of the power network. A charging/discharging dispatching model of traffic network-power network convergence applicable to the MESD is constructed, and the CPLEX solver is invoked to solve the traffic planning and charging/discharging power dispatching plan of the MESD. Finally, a simulation analysis is performed using the IEEE 33-bus distribution system. The simulation results reveal that the active network loss of the system is reduced by 552.17 kWh, and the loss reduction range is reduced by 31.9%, verifying the effectiveness of the proposed strategy.

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国家自然科学基金面上项目(52177085)

编辑: 张小飞
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