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逆变器基资源存在下的故障类型分类:综述、挑战与未来工作
Fault Type Classification in the Presence of Inverter-Based Resources: Review, Challenges, and Future Works
| 作者 | Mohammad Mehdi Mobashsher · Seyyed Mehdi Hosseini · Ali Akbar Abdoos · Sayyed Mohammad Hashemi · Majid Sanaye-Pasand · Maher Azzouz |
| 期刊 | IEEE Access |
| 出版日期 | 2025年1月 |
| 技术分类 | 电动汽车驱动 |
| 技术标签 | SiC器件 工商业光伏 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 故障类型分类 逆变器资源 电网代码 传统方法 新方法 |
语言:
中文摘要
故障类型分类是工业距离保护继电器的重要功能,影响单极跳闸、重合闸和故障定位等保护方案。传统分类技术依赖电流对称分量相位变化或叠加电流幅值差异。由于逆变器基资源的电流特征不同于同步发电机,当应用于逆变器基资源馈线时,传统方法存在误识别问题。本文分析了现代电网规范下逆变器基资源对传统故障类型分类方法的局限性。
English Abstract
Fault type classification (FTC) is a major unit of industrial distance relays that affects some other protective schemes such as single-pole tripping and reclosing, fault location and etc. Traditional FTC techniques make use of either phase changes between current symmetrical components or magnitude differences between superimposed currents. Since inverter-based resources (IBRs) have different current signatures than those of synchronous generators, conventional FTC approaches suffer from misrecognition when applied to a transmission line emanating from an IBR. The fault current contribution of IBRs is determined by the host grid code (GC) and the internal controller. Therefore, this paper demonstrates the limitations of the conventional FTC methods employed in industrial applications for protection of lines that originate from IBRs under modern host GCs. First, the influence of various GCs on the classic FTC techniques is analyzed based on the negative-sequence control strategies. Then, some experimental tests are executed to evaluate the accuracy of industrial FTC methods in the attendance of IBRs. After that, various newly proposed FTC methods in the presence of IBRs are studied, and their advantages and disadvantages are discussed. Lastly, potential research gaps in the area of FTC with IBRs are noted for further study and investigation in academic circles.
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SunView 深度解读
该故障分类技术研究可应用于阳光电源光储系统的保护方案优化。通过改进的故障类型识别算法,提升SG系列光伏逆变器和ST系列储能系统在复杂电网条件下的保护准确性,避免误动和拒动,增强新能源并网系统的安全性,为高比例新能源电网提供可靠的保护技术支撑。