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Fourier Transform Infrared Absorption Spectroscopy for Quantitative Analysis of Gas Mixtures at Low Temperatures for Homeland Security Applications

机译:用于国土安全应用的低温气体混合物定量分析的傅里叶变换红外吸收光谱

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摘要

Performance standard specifications for point chemical vapor detectors are established in ASTM E 2885-13 and ASTM E 2933-13. The performance evaluation of the detectors requires the accurate delivery of known concentrations of the chemical target to the system under test. Referee methods enable the analyte test concentration and associated uncertainties in the analyte test concentration to be validated by independent analysis, which is especially important for reactive analytes. This work extends the capability of a previously demonstrated method for using Fourier transform infrared (FT-IR) absorption spectroscopy for quantitatively evaluating the composition of vapor streams containing hazardous materials at Acute Exposure Guideline Levels (AEGL) to include test conditions colder than laboratory ambient temperatures. The described method covers the use of primary reference spectra to establish analyte concentrations, the generation of secondary reference spectra suitable for measuring analyte concentrations under specified testing environments, and the use of additional reference spectra and spectral profile strategies to mitigate the uncertainties due to impurities and water condensation within the low-temperature (7 °C, −5 °C) test cell. Important benefits of this approach include verification of the test analyte concentration with characterized uncertainties by in situ measurements co-located with the detector under test, near-real-time feedback, and broad applicability to toxic industrial chemicals.
机译:点化学蒸汽检测器的性能标准规范在ASTM E 2885-13和ASTM E 2933-13中建立。检测器的性能评估要求将已知浓度的化学目标物准确地传递到被测系统。裁判方法可以通过独立分析来验证分析物测试浓度和分析物测试浓度的相关不确定性,这对于反应性分析物尤其重要。这项工作扩展了先前证明的方法的能力,该方法使用傅里叶变换红外(FT-IR)吸收光谱法以急性暴露指导水平(AEGL)定量评估包含有害物质的蒸气流的成分,以包括比实验室环境温度低的测试条件。所描述的方法包括使用主要参考光谱确定分析物浓度,生成适合在指定测试环境下测量分析物浓度的次要参考光谱,以及使用其他参考光谱和光谱轮廓策略来减轻由于杂质和杂质引起的不确定性。低温(7°C,-5°C)测试室内的水凝结。这种方法的重要好处包括:通过与被测检测器共处一地的原位测量来验证具有特征性不确定性的待测分析物浓度,近实时反馈以及对有毒工业化学品的广泛适用性。

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