利用公开数据重建城市电网拓扑,覆盖7330栋建筑
Urban Power Grid Topology and Hierarchy Identification from Open Data

- 融合电力线路、变电站等公开数据,构建电网图结构
- 基于地理空间机器学习,推断建筑级配电连接,还原完整拓扑
- 适用于电网优化与可再生能源接入分析,适合能源研究者
理解城市电网的复杂拓扑与层级结构对于能源预测、潮流管理及系统韧性分析至关重要。然而,详细电网信息大多属于专有数据,给研究和创新带来障碍,尤其在分析连接单个建筑的末端配电网时更为明显。本文提出一种基于开放数据的框架,实现从高压输电到建筑级连接的完整电网拓扑识别。具体而言,通过图算法融合公共基础设施数据(如线路、变电站、变压器、电杆),构建高压与中压骨干网络;再利用基于OpenStreetMap建筑数据的地理空间机器学习方法,对用电负荷聚类,并推断最终配电线路的物理连接。该框架应用于挪威奥斯陆Alna区,成功重建了连接7,330栋建筑及主要电力设施资产的完整电网拓扑。本研究为电网潮流优化、级联故障模拟及分布式可再生能源渗透下的电网韧性分析提供了关键工具。
原文摘要 · Abstract (English)
Understanding the complex topology and hierarchy of urban power grid is crucial for energy prognosis, power flow management, and system resilience analysis. However, detailed grid information remains largely proprietary. This creates significant barriers for research and innovation, especially when analyzing the last-mile distribution networks connecting individual buildings. This paper addresses this challenge by developing an open-data-driven framework for the complete identification of urban power grid topology, from high-voltage transmission down to individual building connections. Particularly, we fuse public infrastructure data (power-lines, substations, transformers, poles) to map the high and medium-voltage skeleton using graph-based algorithms. We then leverage geospatial machine learning on OpenStreetMap building data to group power demand clusters, and infer the physical topology of the final distribution lines linking the clustered buildings. We apply the developed framework to the district of Alna in Oslo, Norway, and we reconstruct the complete grid topology that connects 7,330 buildings and all major electricity infrastructure assets. With the research in this work, we provide a critical tool that facilitates power system analysis, e.g., power flow optimization, cascading failure simulation, and grid resilience against the penetration of distributed renewable generation.
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