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基于光谱分析与激光光谱相结合的索磷布韦定量检测研究

Study on the quantitative detection of SOF based on spectral analysis combined with laser spectroscopy.

作者信息

Cao Zhigang, Liu Bin, Xiang Yinghan, Liang Shuai, Guo Xu

机构信息

State Grid Tongliao Power Supply Company Tongliao 028000 China.

出版信息

RSC Adv. 2025 Jun 9;15(24):19421-19430. doi: 10.1039/d4ra06854h. eCollection 2025 Jun 4.

Abstract

Accurate monitoring of insulation failure in SF gas-insulated equipment is essential for ensuring power grid reliability. In the early stages of equipment failure, the characteristic decomposition product SOF is generated. By detecting its concentration and variation, insulation defects can be identified. In this paper, SOF detection based on laser absorption spectroscopy was studied. The infrared spectral characteristics of SOF and its coexisting gases were analyzed. It was found that SOF exhibits a strong absorption peak at 2763 cm, which is not affected by interference from its coexisting gases. An ICL laser with a wavelength of 3619 nm was selected for SOF detection. A laser absorption spectroscopy experimental platform was established to conduct quantitative research on trace levels of SOF. The detection performance of two methods-direct absorption spectroscopy and harmonic modulation-was compared. The results demonstrate that both methods can accurately detect SOF within the 0-600 ppm concentration range, with the harmonic modulation method exhibiting significantly better sensitivity and repeatability. The response to the direct absorption spectroscopy system is 0.782 mV ppm, with a repeatability error of 2.525 ppm and a detection limit of 3.94 ppm. The harmonic modulation system shows a response of 11.433 mV ppm, which is about 15 times higher than that of the direct absorption spectroscopy. Its repeatability error is 0.937 ppm, which is only 0.37 times that of direct absorption spectroscopy, and the detection limit is 357.56 ppb, which is about 11 times lower than that of direct absorption spectroscopy.

摘要

准确监测SF6气体绝缘设备中的绝缘故障对于确保电网可靠性至关重要。在设备故障的早期阶段,会产生特征分解产物SOF6。通过检测其浓度和变化,可以识别绝缘缺陷。本文研究了基于激光吸收光谱法的SOF6检测。分析了SOF6及其共存气体的红外光谱特性。发现SOF6在2763 cm-1处呈现出强烈的吸收峰,不受其共存气体的干扰影响。选择波长为3619 nm的ICL激光用于SOF6检测。建立了激光吸收光谱实验平台,对痕量水平的SOF6进行定量研究。比较了直接吸收光谱法和谐波调制法两种方法的检测性能。结果表明,两种方法都能在0-600 ppm浓度范围内准确检测SOF6,其中谐波调制法的灵敏度和重复性明显更好。直接吸收光谱系统的响应为0.782 mV/ppm,重复性误差为2.525 ppm,检测限为3.94 ppm。谐波调制系统的响应为11.433 mV/ppm,约为直接吸收光谱法的15倍。其重复性误差为0.937 ppm,仅为直接吸收光谱法的0.37倍,检测限为357.56 ppb,约为直接吸收光谱法的11分之一。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8c4a/12147093/ebd1a46b5cdf/d4ra06854h-f1.jpg

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