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Energy Transition | Open Access

Spatiotemporal Data Graph Modeling and Exploration of Application Scenarios in “Power Grid One Graph”

Peng Li1Zhen Dai1Yachen Tang2Guangyi Liu2( )Jiaxuan Hou1Qinyu Feng1Quanchen Lin1
China Southern Power Grid Digital Grid Research Institute Co., Ltd., Guangdong 510663, China
Univers, Santa Clara, CA, 95054, USA
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Abstract

By modeling the spatiotemporal data of the power grid, it is possible to better understand its operational status, identify potential issues and risks, and take timely measures to adjust and optimize the system. Compared to the bus-branch model, the node-breaker model provides higher granularity in describing grid components and can dynamically reflect changes in equipment status, thus improving the efficiency of grid dispatching and operation. This paper proposes a spatiotemporal data modeling method based on a graph database. It elaborates on constructing graph nodes, graph ontology models, and graph entity models from grid dispatch data, describing the construction of the spatiotemporal node-breaker graph model and the transformation to the bus-branch model. Subsequently, by integrating spatiotemporal data attributes into the pre-built static grid graph model, a spatiotemporal evolving graph of the power grid is constructed. Furthermore, the concept of the “Power Grid One Graph” and its requirements in modern power systems are elucidated. Leveraging the constructed spatiotemporal nodebreaker graph model and graph computing technology, the paper explores the feasibility of grid situational awareness. Finally, typical applications in an operational provincial grid are showcased, and potential scenarios of the proposed spatiotemporal graph model are discussed.

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CSEE Journal of Power and Energy Systems
Pages 538-551

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Cite this article:
Li P, Dai Z, Tang Y, et al. Spatiotemporal Data Graph Modeling and Exploration of Application Scenarios in “Power Grid One Graph”. CSEE Journal of Power and Energy Systems, 2025, 11(2): 538-551. https://doi.org/10.17775/CSEEJPES.2024.00960

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Received: 07 February 2024
Revised: 07 May 2024
Accepted: 12 June 2024
Published: 28 February 2025
© 2024 CSEE.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).