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Cantilever enhanced photoacoustic spectrometry: Quantitative analysis of the trace H2S produced by SF6 decomposition

机译:悬臂增强光声光谱法:SF6分解产生的痕量H2S的定量分析

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As one of the key characteristic components that result from sulfur hexafluoride (SF6) decomposition in SF6 gas-insulated equipment, hydrogen sulfide (H2S) can reflect the severity of the internal insulation faults and indicate whether or not such faults involve solid insulation material effectively. The decomposition of SF6 and its reaction with other impurities to form H2S are simulated in this study via Materials Studio. The simulation verifies that H2S is generated only when serious faults occur in the equipment; thus, the online monitoring of the trace H2S is highly necessary. To achieve a high detection accuracy and avoid cross interference, the spectral line R (8) of the H2S v(1) + v(2) + v(3) co-frequency absorption band is taken as the absorption line for the gas detection by online simulation based on the HITRAN on the Web. In addition, this study develops a cantilever-enhanced photoacoustic spectrometry trace gas detection platform and conducts experimental research on the quantitative detection of trace H2S/SF6 and H2S/N-2. Experimental results show that the detection sensitivity of the detection platform to trace H2S under the background gas N-2 and SF6 is 0.84 and 1.75 mu L/L, respectively, and a strong linear relationship exists between the trace H2S concentration and its corresponding PA signal. Moreover, based on both the theoretical simulation and experiment, the influence of temperature and pressure on the detection platform is discussed and analyzed. The results indicate that the change in the PA signal amplitude decreases with an increase in the pressure or temperature of the PA cell, and the detection platform is more sensitive to pressure. (C) 2016 Elsevier B.V. All rights reserved.
机译:硫化氢(H2S)作为六氟化硫(SF6)气体绝缘设备中六氟化硫(SF6)分解产生的关键特征成分之一,可以反映内部绝缘故障的严重程度,并表明此类故障是否有效地涉及固体绝缘材料。在这项研究中,通过Materials Studio模拟了SF6的分解及其与其他杂质反应生成H2S的过程。仿真验证了仅在设备中发生严重故障时才生成H2S。因此,在线监测痕量硫化氢非常必要。为了获得较高的检测精度并避免交叉干扰,将H2S v(1)+ v(2)+ v(3)同频吸收带的谱线R(8)作为气体检测的吸收线通过基于Web的HITRAN进行在线仿真。此外,本研究开发了一种悬臂增强型光声光谱法痕量气体检测平台,并进行了痕量H2S / SF6和H2S / N-2定量检测的实验研究。实验结果表明,在背景气体N-2和SF6下,检测平台对痕量H2S的检测灵敏度分别为0.84和1.75μL/ L,痕量H2S浓度与其对应的PA信号之间存在很强的线性关系。 。此外,基于理论模拟和实验,讨论并分析了温度和压力对检测平台的影响。结果表明,PA信号幅度的变化随PA电池压力或温度的升高而减小,并且检测平台对压力更敏感。 (C)2016 Elsevier B.V.保留所有权利。

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