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光伏发电技术
★ 5.0
提高高绝对湿度环境下直流电弧检测精度
Improving the precision of DC arc detection in high absolute humidity environment
| 作者 | Xinran Liab · Xuxin Gea · Ziyu Zhu · Fan Jia · Yu Wang · Yaojie Sun |
| 期刊 | Solar Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 299 卷 |
| 技术分类 | 光伏发电技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | The time variation of arc noise includes ascending and descending stages. |
语言:
中文摘要
摘要 直流(DC)电弧是导致光伏系统和电池系统等直流系统故障的主要原因之一。由于放电条件会影响电弧噪声的特性,其中湿度是一个重要因素,因此直流电弧难以检测。然而,大多数研究是在固定湿度条件下进行的,导致湿度如何影响电弧检测的机制尚不明确。这种不确定性阻碍了在宽湿度范围内对直流电弧进行可靠检测。本研究系统地探讨了绝对湿度对直流电弧检测的影响,涵盖电弧噪声行为、特征提取以及分类性能。实验结果表明,电弧噪声的时频分布包含上升和下降两个阶段。具体而言,电弧噪声的幅度与绝对湿度呈负相关,而其峰值出现时间则与温度和电流均呈负相关。此外,较高的绝对湿度会降低电弧特征的信噪比,并增加误分类风险,尤其是在噪声下降阶段更为显著。为应对这一问题,本文提出了“检测甜区”(detection sweet zone)的概念,用于定义在潮湿条件下有效的检测时间区间。例如,一个9.8 A电弧的甜区在相对湿度90%、温度20°C时为2.49秒,而在相对湿度80%、温度45°C时缩短至1.23秒。当检测时间间隔超出甜区范围时,检测失败率随之成比例上升,范围从1.5%上升到60.1%。因此,基于甜区确定检测时间间隔可有效提高高绝对湿度环境下的检测精度。
English Abstract
Abstract Direct current (DC) arcs are among the primary causes of failures in DC systems, including photovoltaic and battery systems. DC arcs are difficult to detect because their noise characteristics are affected by discharge conditions, with humidity being a significant factor. However, most studies have been conducted under fixed humidity conditions. Thus, the mechanism by which humidity affects arc detection remains unclear. This uncertainty hampers reliable detection of DC arcs across a wide humidity range. This study provides a comprehensive investigation into the impact of absolute humidity on DC arc detection, covering arc noise behavior, feature extraction, and classification performance. The experiments reveal that the time-frequency distribution of arc noise consists of ascending and descending stages. Specifically, the amplitude of arc noise was found to be negatively correlated with absolute humidity, while the peak time was negatively correlated with both temperature and current. Furthermore, higher absolute humidity was found to lower the signal-to-noise ratio of arc features and increase misclassification risk, particularly during the noise descending stage. To address this, a concept of detection sweet zone was proposed to define a detection interval range under humid conditions. The sweet zone of a 9.8 A arc shortens from 2.49 s at 90 % relative humidity and 20 °C to 1.23 s at 80 % relative humidity and 45 °C. The detection failure rate increases proportionally as detection interval exceeds the sweet zone, ranging from 1.5 % to 60.1 %. Therefore, determining detection intervals based on the sweet zone can improve detection precision under high absolute humidity.
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SunView 深度解读
该高湿度环境直流电弧检测技术对阳光电源SG系列光伏逆变器和ST储能变流器的安全防护具有重要价值。光伏电站和储能系统常部署于沿海、热带等高湿度地区,现有AFCI(电弧故障断路器)功能在湿度变化时易产生误判或漏检。研究揭示的湿度对电弧噪声特性的影响机理,可优化阳光电源直流侧电弧检测算法,通过自适应特征提取和动态判据调整,提升iSolarCloud智能诊断系统在宽湿度范围的检测准确性。该技术可集成到逆变器DSP控制器和云端预测性维护平台,降低因电弧故障导致的火灾风险,增强产品在全球不同气候区的适应性和可靠性,符合UL1699B等国际安全标准要求。