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谐波间功率——一种用于电力系统振荡源定位的新概念
Interharmonic Power–A New Concept for Power System Oscillation Source Location
| 作者 | Wilsun Xu · Jing Yong · Horacio J. Marquez · Chun Li |
| 期刊 | IEEE Transactions on Power Systems |
| 出版日期 | 2025年1月 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 电力系统振荡 振荡源定位 间谐波 相量表示 新方法 |
语言:
中文摘要
电力系统振荡是系统运营商极为关注的问题,随着基于逆变器的电源互联,这一问题愈发严重。为解决该问题,人们提出了多种定位振荡源的方法,这对于采取有效的缓解措施至关重要。这些方法的一个共同特点是依赖振荡现象的相量表示。本文采用了不同的方法,研究相量背后的实际电压和电流波形。研究发现,间谐波分量的存在是相量振荡的充要条件。从相量域来看,振荡表现为拍频波形,而拍频波形是由间谐波与基频波相互作用产生的。因此,间谐波的产生和传播是振荡现象的普遍原因。基于这些见解,本文开发了两种定位振荡源的新方法:一种用于基于测量的监测应用,另一种用于基于模型的系统研究。通过四个基于现场数据和一个基于仿真的案例研究验证了这些研究结果。
English Abstract
Power system oscillations are a significant concern for system operators, a problem that has grown due to the interconnection of inverter-based resources. To address this issue, various methods have been proposed to locate the sources of oscillations, which is essential for effective mitigation actions. A common characteristic of these methods is that they rely on phasor representation of oscillation phenomena. This paper takes a different approach by examining the actual voltage and current waveforms underlying the phasors. It is found that the presence of interharmonic components is both the necessary and sufficient condition for phasor oscillations. Oscillation is the appearance of a beating waveform viewed from the phasor domain, and the beating waveform is created by interharmonics interacting with the fundamental frequency wave. As a result, the generation and propagation of interharmonics are the general cause of oscillation phenomena. Based on these insights, two new methods are developed for locating oscillation sources: one for measurement-based monitoring applications and another for model-based system studies. These findings are validated through four field data-based and one simulation-based case studies.
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SunView 深度解读
该谐波间功率振荡源定位技术对阳光电源储能和光伏产品具有重要应用价值。在ST系列储能变流器和PowerTitan大型储能系统中,可集成该算法实现振荡源自诊断功能,快速识别系统内部或外部振荡源位置,提升构网型GFM控制的稳定性。对于SG系列光伏逆变器大规模并网场景,该方法可用于iSolarCloud平台的智能诊断模块,实时监测非特征谐波功率流动,预警逆变器集群与电网交互引发的次同步/超同步振荡风险。技术可融入现有MPPT算法和虚拟同步机VSG控制策略,通过谐波间功率反馈实现主动阻尼注入,增强复杂互联电网下的并网适应性,为新能源高渗透率场景提供振荡抑制解决方案。