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优化电网:一种用于节能电动汽车充电的填谷启发式算法。

Optimizing power grids: A valley-filling heuristic for energy-efficient electric vehicle charging.

作者信息

Souza Guilherme Gloriano de, Santos Ricardo Ribeiro Dos, Godoy Ruben Barros

机构信息

College of Computing, Federal University of Mato Grosso do Sul, Campo Grande, Mato Grosso do Sul, Brazil.

College of Engineering, Faculty of Engineering, Architecture and Urbanism and Geography, Federal University of Mato Grosso do Sul, Campo Grande, Mato Grosso do Sul, Brazil.

出版信息

PLoS One. 2025 Jan 7;20(1):e0316677. doi: 10.1371/journal.pone.0316677. eCollection 2025.

Abstract

The expansion of electric vehicles (EVs) challenges electricity grids by increasing charging demand, thereby making Demand-Side Management (DSM) strategies essential to maintaining balance between supply and demand. Among these strategies, the Valley-Filling approach has emerged as a promising method to optimize renewable energy utilization and alleviate grid stress. This study introduces a novel heuristic, Load Conservation Valley-Filling (LCVF), which builds on the Classical and Optimistic Valley-Filling approaches by incorporating dynamic load conservation principles, enabling better alignment of EV charging with grid capacity. We conducted a comprehensive analysis of the heuristic across five EV charging scenarios. In both the Original and Flexible scenarios, LCVF reduced energy demand by up to 10.65%, demonstrating its adaptability and effectiveness. Notably, in the 24-hour Availability scenario, LCVF achieved a reduction of over 20% in energy demand compared to CVF. These findings indicate that LCVF could play a crucial role in enhancing real-world EV charging infrastructure, boosting energy efficiency and grid stability. By integrating DSM strategies like LCVF, energy grids can better accommodate renewable energy sources, promoting more sustainable operations.

摘要

电动汽车(EV)的扩张因充电需求增加而给电网带来挑战,因此需求侧管理(DSM)策略对于维持供需平衡至关重要。在这些策略中,填谷方法已成为一种有前景的方式,可优化可再生能源利用并缓解电网压力。本研究引入了一种新颖的启发式方法——负荷守恒填谷(LCVF),它在经典和乐观填谷方法的基础上,纳入动态负荷守恒原则,使电动汽车充电能更好地与电网容量相匹配。我们针对五种电动汽车充电场景对该启发式方法进行了全面分析。在原始场景和灵活场景中,LCVF将能源需求降低了多达10.65%,证明了其适应性和有效性。值得注意的是,在24小时可用场景中,与CVF相比,LCVF使能源需求降低了超过20%。这些发现表明,LCVF在增强实际电动汽车充电基础设施、提高能源效率和电网稳定性方面可发挥关键作用。通过整合像LCVF这样的DSM策略,电网能够更好地接纳可再生能源,促进更可持续的运营。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e9d/11706402/2a22da17159e/pone.0316677.g001.jpg

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