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基于特征提取的超高渗透率分布式电源配电网中SOP与多级电-氢混合储能两阶段时空解耦配置
Two-stage spatiotemporal decoupling configuration of SOP and multi-level electric-hydrogen hybrid energy storage based on feature extraction for distribution networks with ultra-high DG penetration
| 作者 | Shengyuan Wanga · Fengzhang Luoa · Jiacheng Foa · Yunqiang Lvb · Chengshan Wanga |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 398 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 多电平 多物理场耦合 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | The MEH-SOP system with multi-scale spatiotemporal regulation capability is proposed for the first time. |
语言:
中文摘要
摘要 在“双碳”目标驱动下,中国部分县级配电网(DN)已呈现出超高渗透率的分布式电源(DG)接入,导致功率与能量不平衡、电压越限等运行问题。这些问题对跨馈线灵活性资源的协调利用与优化配置提出了更高要求。此外,这些资源强烈的时空耦合特性显著增加了系统建模与求解的复杂性。为应对上述挑战,本文提出一种基于特征提取的多级电-氢混合储能与多端口软常开点(MEH-SOP)系统的两阶段时空解耦配置方法。首先,构建MEH-SOP系统,以实现从日内至周际时间尺度的能量协调以及馈线间的资源共享;其次,建立MEH-SOP系统的多尺度时空协调机制,并构建两阶段时空解耦的配置模型,其中多级电-氢混合储能(MEH)与软常开点(SOP)之间的交互功率以及时段电价(TOU)作为两个阶段之间的耦合纽带,从而实现MEH在时间维度和SOP在空间维度上的协同配置。同时,为进一步降低MEH配置模型的计算复杂度,引入基于局部加权回归的季节-趋势分解(STL)方法进行趋势特征提取策略,并预先设定季节性氢储能(SHS)的充放电状态(0/1),以简化模型结构。最后,在改进的台湾31节点配电网系统上开展仿真验证。结果表明,所提方法不仅保证了较高的配置精度,还显著提升了计算效率,能够有效缓解多尺度时空条件下的能量不平衡与电压越限问题,具备较强的工程适用性和良好的实际应用前景。
English Abstract
Abstract Driven by the “dual carbon” goals, some county-level distribution networks (DN) in China have exhibited ultra-high penetration of distributed generation (DG), resulting in operational issues such as power and energy imbalances and voltage violations. These issues place greater demands on the coordinated utilization and optimal configuration of flexibility resources across feeders. Moreover, the strong spatiotemporal coupling of these resources significantly increases the complexity of system modeling and solution. To address these challenges, this paper proposes a two-stage spatiotemporal decoupling approach for configuring a multi-level electric–hydrogen hybrid energy storage and multi-port soft open point (MEH-SOP) system, based on feature extraction. First, an MEH-SOP system is developed to enable energy coordination across intra-day to inter-week timescales and resource sharing among feeders. Second, a multi-scale spatiotemporal coordination mechanism is established for the MEH-SOP system. A two-stage spatiotemporal decoupled configuration model is then formulated, where the interactive power between the multi-level electric–hydrogen hybrid energy storage (MEH) and soft open point (SOP), along with time-of-use (TOU) pricing, serves as a linkage between the two stages. This enables coordinated configuration of MEH in the temporal dimension and SOP in the spatial dimension. Meanwhile, to further reduce the computational complexity of the MEH configuration model, a trend feature extraction strategy based on seasonal-trend decomposition using loess (STL) is introduced. The charging/discharging states (0/1) of seasonal hydrogen storage (SHS) are preset to simplify the model. Finally, simulations are conducted on a modified 31-bus Taiwan distribution system. The results show that the proposed approach not only ensures high configuration accuracy but also significantly improves computational efficiency. It effectively mitigates energy imbalances and voltage violations under multi-scale spatiotemporal conditions, showing strong engineering applicability and promising prospects for practical deployment.
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SunView 深度解读
该多级电氢混合储能与柔性互联技术对阳光电源ST系列储能变流器及PowerTitan系统具有重要应用价值。论文提出的时空解耦配置方法可优化我司多端口SOP产品在高比例分布式光伏场景下的协调控制策略,特别是结合iSolarCloud平台的STL特征提取算法,能显著提升多时间尺度能量管理效率。电氢混合储能架构为我司拓展氢储能业务提供技术参考,三电平拓扑与SiC器件应用可增强系统功率密度。该方案对县域配电网的电压越限治理与削峰填谷具有工程实用性,契合我司源网荷储一体化解决方案发展方向。