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基于多通光声池的SF_(6)分解产物H_(2)S的高灵敏度检测技术 被引量:1

High-sensitivity Detection Technology of SF_(6)Decomposition Product H_(2)S Based on Multi-pass Photoacoustic Cell
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摘要 针对H_(2)S气体在近红外波段的吸收系数低导致检测灵敏度难以提高的难题,提出了基于共振式多通光声池的SF_(6)分解产物H_(2)S气体检测技术。对赫里奥特型多通光声池进行优化设计,激光光束反射次数达到20次。近红外激光经功率放大后入射到多通光声池,通过多次光学反射大幅度提升了光声信号的激发效率,结合声学共振放大技术、光纤放大技术和波长调制-二次谐波检测技术,搭建了一套光声光谱气体检测系统,实现了SF_(6)背景下微量H_(2)S气体的高灵敏度检测。实验结果表明,归一化噪声等效吸收系数为2.23×10^(-9)cm^(-1)·W·Hz^(-1/2),在平均时间为100 s时,该检测系统对H_(2)S气体的检测极限达到2.7×10^(-8)。 SF_(6)is applied as an insulating medium in gas-insulated equipment due to its excellent insulation and arc extinguishing properties.However,aging or overheating within the equipment can cause partial discharge,resulting in the decomposition of SF_(6)to form low-fluoride compounds,which react with water and oxygen inside the equipment to produce the characteristic gas H_(2)S.As a decomposition product of SF_(6),H_(2)S is one of the characteristic components of fault diagnosis of gas-insulated equipment,and has strong corrosivity and toxicity.The inferior nature of this gas can lead to serious damage inside the equipment.Therefore,high-sensitivity online monitoring of trace H_(2)S gas is of great significance for the stable operation of gas-insulated equipment.Detection techniques for SF_(6)decomposition products envelop nonoptical and optical methods.Beer-Lambert-based Photoacoustic Spectroscopy(PAS)sensing technology is an indirect absorption spectroscopy technique that has gained a wider range of attention than non-optical detection methods due to its advantages of no gas load,no maintenance,fast response time,and high sensitivity.When the concentration of the gas to be measured is unchanged,the excitation light efficiency of the photoacoustic signal can be enhanced by increasing the length of the absorption path.The excitation light injected into the multi-pass cell is collimated by the collimator and reflected back and forth between the concave mirrors installed on both sides of the buffer of the photoacoustic cell.H_(2)S has a good spectral line absorption peak in the near-infrared band.The near-infrared laser is incident on a multi-pass photoacoustic cell after power amplified,and the excitation efficiency of the photoacoustic signal is greatly improved through multiple optical reflections.Combined with acoustic resonance amplification,optical fiber amplification and wavelength modulation-second harmonic detection technology,a set of photoacoustic spectroscopy gas detection system is built to achieve high-sensitivity detection of trace H_(2)S gas in SF_(6)background.A 1574.56 nm near-infrared distributed feedback DFB laser cascaded a highpower Erbium-doped Fiber Amplifier(EDFA)is selected as the excitation light source of the system.A single-mode fiber-optic and a collimator are used to collimate the light source into the photoacoustic cell.The photoacoustic cell consists of a resonant tube and two buffer chambers flanked by concave mirrors.The photoacoustic signals are detected in real time by capacitive sensors,and then processed by a Fieldprogrammable Gate Array(FPGA)-based lock-in amplifier.The second harmonic signals are obtained by the LabVIEW program,and the concentration of the target gas to be detected is calculated.SF_(6)is a gas with special physical properties such as high density,high diffusion coefficient and low specific heat capacity,which is easily affected by the high-pressure environment inside the field work equipment.COMSOL simulation software is used to simulate the resonance frequency of the photoacoustic cell in SF_(6)background and N2background,and the experimental results are consistent with the simulation results.In SF_(6)background,the photoacoustic cell resonance frequency is reduced to 638 Hz.In order to effectively improve the amplitude of the photoacoustic signal of the fiber amplification laser photoacoustic spectroscopy detection system based on wavelength modulation-second harmonic detection technology,the amplitude of the modulation parameters is optimized.When the modulation current of the DFB laser is set to 3.5 mA,the amplitude of the photoacoustic signal detected by the system is the highest.To assess the response of the multi-pass photoacoustic cell to the measured gas concentration,the high-purity SF_(6)gas is mixed with a H_(2)S/SF_(6)mixture of 50 ppm in a certain proportion,and the system shows a good linear response of9.59μV/ppm for H_(2)S gas concentrations up to 50 ppm.A continuous charge of pure SF_(6)gas into the multi-pass cell is used to measure the noise level and evaluate the Minimum Detection Limit(MDL)of the system.The standard deviation(1σ)of the noise is 0.85μV.The experimental results show that the Normalized Noise Equivalent Absorption(NNEA)coefficient is 2.23×10^(-9)cm^(-1)·W·Hz^(-1/2).Allan deviation analysis is performed on the noise over a time period of 1000 s.The Allan deviation result shows that when the averaging time is 100 s,the MDL of the system is 27 ppb.The system gradually stabilized with the increase of the mean time.The detection limit on the order of ppb provide a favorable solution for diagnosing the failure of gas insulation equipment.
作者 马凤翔 赵跃 王楠 赵新瑜 郭珉 李辰溪 朱太云 杭忱 陈珂 MA Fengxiang;ZHAO Yue;WANG Nan;ZHAO Xinyu;GUO Min;LI Chenxi;ZHU Taiyun;HANG Chen;CHEN Ke(Electric Power Research Institute,State Grid Anhui Electric Power Co.,Ltd.,Hefei 230601,China;School of Optoelectronic Engineering and Instrumentation Science,Dalian University of Technology,Dalian 116024,China)
出处 《光子学报》 EI CAS CSCD 北大核心 2023年第3期258-267,共10页 Acta Photonica Sinica
基金 国家电网有限公司总部科技项目(No.B31205210011) 国家自然科学基金(Nos.62275040,61905034)。
关键词 气体绝缘设备 SF_(6)分解产物 H_(2)S气体检测 光声光谱 多通光声池 Gas insulation equipment SF_(6)decomposition products H_(2)S gas detection Photoacoustic spectroscopy Multi-pass photoacoustic cell
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