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功率器件技术 SiC器件 ★ 5.0

实用动态安全域模型:一种混合物理模型驱动与数据驱动的方法

Practical Dynamic Security Region Model: A Hybrid Physical Model-Driven and Data-Driven Approach

作者 Junzhi Ren · Yuan Zeng · Chao Qin
期刊 IEEE Transactions on Power Systems
出版日期 2024年4月
技术分类 功率器件技术
技术标签 SiC器件
相关度评分 ★★★★★ 5.0 / 5.0
关键词 安全区域 安全裕度 数据驱动方法 模型驱动方法 暂态稳定评估
语言:

中文摘要

基于安全域(SR)的安全分析方法在电力系统分析中起着关键作用。安全裕度的构建有助于挖掘实际动态安全域(PDSR)的几何和物理特性。数据驱动方法为电力系统安全分析提供了有力支持。然而,人工智能方法的可解释性差和泛化能力弱阻碍了其在电力系统中的应用。尽管模型驱动方法能够有效分析物理模型的内部机制,提高其可解释性,并增强安全裕度评估的可靠性,但其强非线性结构和低计算效率限制了其进一步应用。本研究首先基于安全域的特性构建了可靠的安全裕度,进而基于可靠性指标得到临界运行区间。最后,采用数据驱动方法修正实际动态安全域的安全裕度。所提方法在新英格兰10机39节点系统和中国某实际系统上进行了验证。结果表明,与现有方法相比,该方法具有更高的评估精度。此外,它能够有效解释模型机制,提供影响评估结果的关键因素。具有高精度和可解释性的实际动态安全域将有助于准确制定暂态稳定评估结果,同时增加电力系统调度决策的响应时间。

English Abstract

Security analysis methods based on security region (SR) play a pivotal role in power system analysis. The construction of security margin contributes towards the mining of geometric and physical characteristics of a practical dynamic SR (PDSR). The data-driven approach provides strong support for power system security analysis. However, poor interpretability and weak generalization ability of artificial intelligence method have hindered its application in power systems. Although the model-driven method can effectively analyze the internal mechanisms of physical models, improve their interpretability, and enhance the reliability of security margin assessment, its strong nonlinear structure and low computational efficiency limits its further application. This study first constructed a reliable security margin based on the characteristics of the SR, and consequently obtained the critical operating interval based on a reliability indicator. Finally, data-driven method was used to modify the security margin of PDSR. The proposed method was validated on the New England 10-machine-39-node system and a practical system in China. The results confirmed its higher evaluation accuracy compared to existing methods. Further, it could effectively explain the model mechanism, providing key factors that affect the evaluation results. A PDSR with high accuracy and interpretability will facilitate the accurate formulation of transient stability assessment results, while increasing the response time for power system dispatch decision-making.
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SunView 深度解读

该混合建模方法对阳光电源的储能与光伏产品线具有重要应用价值。可用于ST系列储能变流器和SG系列光伏逆变器的安全运行边界评估,特别是在大规模新能源并网场景下。通过融合物理模型与数据驱动方法,能够优化PowerTitan等大型储能系统的运行策略,提升GFM/GFL控制的稳定性裕度。这对提高产品在复杂电网环境下的适应性、完善iSolarCloud平台的预测性维护功能具有创新启发。建议在储能EMS和光伏电站群控等场景进行技术验证,进一步提升阳光电源产品的安全可靠性。