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基于不同调度场景和电网强度下VSG储能系统优化配置以提升跟网型变流器稳定性

Optimal VSG BESS Sizing for Improving Grid-Following Converter Stability Under Various Dispatch Scenarios and Grid Strengths

作者 Yunda Xu · Ruifeng Yan · Tapan Kumar Saha
期刊 IEEE Transactions on Sustainable Energy
出版日期 2025年3月
技术分类 储能系统技术
技术标签 储能系统 跟网型GFL 虚拟同步机VSG 弱电网并网 可靠性分析
相关度评分 ★★★★★ 5.0 / 5.0
关键词 逆变器资源 虚拟同步发电机 稳定性分析 稳定运行区域 最优容量确定
语言:

中文摘要

随着可再生能源渗透率提高,基于逆变器的电源在弱电网下的稳定性问题日益突出,尤其跟网型变流器易失稳。虚拟同步发电机(VSG)电池储能系统被证明可改善此类稳定性,但其最优容量配置尚不明确。现有研究多依赖小信号或阻抗模型,仅适用于单一运行点,难以涵盖多种调度场景与电网强度变化。本文提出一种可视化系统稳定运行区域的新方法,揭示不同有功功率与电网阻抗下的稳定边界,并提出计及多工况变化的VSG容量优化配置策略,在确保稳定的同时最小化储能容量。通过PSCAD仿真验证了该策略在广泛运行条件下的有效性与可靠性。

English Abstract

As renewable energy integration increases, ensuring stability of Inverter-Based Resources (IBRs) in weak grids is crucial, as grid-following (GFL) converters often become unstable under such conditions. Integrating virtual synchronous generator (VSG) batteries has shown potential to improve GFL stability, but determining the optimal size of the VSG required for stability remains an open question. Existing research typically relies on small-signal or impedance models for stability analysis, which are only valid at a single operating point and do not consider the full range of operating conditions, including various dispatch scenarios and grid strengths. This paper addresses this gap by proposing a novel methodology to visualize the system's stable operating region, offering insights into stability boundaries across various real power and grid impedance variations. Additionally, it introduces an optimal VSG battery sizing strategy that accounts for these variations, ensuring stability while minimizing VSG capacity. The strategy's effectiveness is validated through comprehensive PSCAD simulations, demonstrating its reliability across a wide range of real power and grid impedance operating points.
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SunView 深度解读

该VSG储能优化配置技术对阳光电源ST系列储能变流器和PowerTitan大型储能系统具有重要应用价值。研究提出的可视化稳定运行区域方法可直接应用于ST储能系统的容量规划工具,帮助客户在弱电网场景下精准确定VSG储能配置,避免过度投资。针对多调度场景和电网强度变化的优化策略,可集成到iSolarCloud云平台的智能诊断模块,实现储能系统在光伏-储能混合电站中的动态稳定性评估。该技术对阳光电源GFL控制算法的稳定性边界分析具有方法论指导意义,可提升ST储能在高比例新能源接入弱电网时的并网可靠性,增强产品在偏远地区和海外微电网市场的竞争力。