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风电变流技术 储能系统 多物理场耦合 ★ 5.0

基于路径阻尼转矩分析的双馈感应发电机功率振荡阻尼器对电力系统振荡阻尼能力的解析评估

Analytical Evaluation to Power System Oscillation Damping Capability of DFIG-POD Based on Path Damping Torque Analysis

作者 Shenghu Li · Jianqiao Ye
期刊 IEEE Transactions on Sustainable Energy
出版日期 2024年9月
技术分类 风电变流技术
技术标签 储能系统 多物理场耦合
相关度评分 ★★★★★ 5.0 / 5.0
关键词 低频振荡 电力系统稳定器 功率振荡阻尼器 阻尼转矩分析 参数优化
语言:

中文摘要

随着风电渗透率增加,电力系统阻尼减弱,可能导致低频振荡加剧。传统同步发电机通过电力系统稳定器抑制振荡,而双馈感应发电机(DFIG)则采用功率振荡阻尼器(POD)。现有阻尼转矩分析方法难以适用于POD,因其无法有效识别与DFIG相关的阻尼路径及其与POD的耦合特性。本文利用线性分数变换技术推导了POD与DFIG耦合的解析表达式,提出了路径阻尼转矩分析法以重构POD的阻尼路径,并基于回差矩阵提出阻尼贡献度指标。仿真结果验证了模型的有效性与精度,并实现了多输入POD参数优化,展示了该模型的应用价值。

English Abstract

The increasing wind power decreases power system damping and may intensify low-frequency oscillation (LFO). The LFO are usually damped by the power system stabilizer (PSS) at synchronous generator (SG), and now by the power oscillation damper (POD) at doubly-fed induction generator (DFIG). The existing damping torque analysis (DTA) sets the parameters of the PSS and evaluates its damping capability, but can not be applied to the POD due to the difficulty of finding the damping path related to the DFIG and the coupling between the POD and the DFIG, which are studied in this paper. At first, the analytical expression of the coupling between the POD and DFIG is newly derived with linear fractional transformation (LFT) technique. Then the path damping torque analysis (PDTA) is proposed to reconstruct the damping path of the POD. Thirdly, the damping indicator based on the return difference matrix is proposed to evaluate the contribution of damping path to the LFO. Finally, numerical results of test system are given to validate effectiveness and accuracy of the proposed model, and parameter optimization to the multi-input POD (MIPOD) is performed to show the application value of the proposed model.
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SunView 深度解读

该研究对阳光电源储能和风电产品线具有重要参考价值。文中提出的路径阻尼转矩分析方法可直接应用于ST系列储能变流器的GFM控制优化,特别是在大规模储能电站中提升系统稳定性。对于阳光电源正在开发的风电变流器产品,该POD控制策略可集成到现有控制平台,通过多输入参数优化提升低频振荡抑制能力。研究成果也可迁移应用于PowerTitan储能系统的VSG控制,增强其并网稳定性。建议在后续产品迭代中将该技术与iSolarCloud平台结合,实现基于云端的振荡监测与阻尼优化。