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Rapid Identification of Atmospheric Gaseous Pollutants Using Fourier-Transform Infrared Spectroscopy Combined with Independent Component Analysis

机译:使用傅立叶变换红外光谱与独立分量分析相结合的傅立叶变换红外光谱快速鉴定大气气态污染物

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Fourier-transform infrared (FTIR) spectroscopy is a rapid and nondestructive technology for monitoring atmospheric quality. The identification of each component from the FTIR spectra is a prerequisite for the accurate quantitative analysis of gaseous pollutants. Due to the overlap of different gas absorption peaks and the interference of water vapor in the actual measurement, the existing identification methods of gas spectra have drawbacks of low identification rate and the inability to carry out real-time online analysis in atmospheric quality monitoring. In this work, independent component analysis (ICA) is applied to the spectral separation of heavily overlapped spectra of gaseous pollutants. The proposed method is validated by the analysis of mixture spectra obtained in laboratory and actual atmospheric spectra collected from stationary source. The average time consumption of separation process is less than 0.2 seconds, and the identification rate of experimental gases is up to 100%, as shown by the results of peak searching and the analysis of the correction coefficient between the separated spectra and the standard spectra database. The identification results of actual atmospheric spectra demonstrated that the proposed method can effectively identify the gaseous pollutants whose concentration changes in the measured spectra, and it is a promising qualitative spectral analysis tool that can shorten the identification time, as well as increase the identification rate. Therefore, this method can be a useful alternative to traditional qualitative identification methods for real-time online atmospheric pollutant detection.
机译:傅立叶变换红外(FTIR)光谱是一种快速和无损技术,用于监测大气质量。来自FTIR光谱的每个组分的鉴定是对气态污染物的准确定量分析的先决条件。由于不同气体吸收峰的重叠和水蒸气的干扰在实际测量中,现有的气谱识别方法具有低识别率和在大气质量监测中进行实时在线分析的缺点。在这项工作中,独立的分量分析(ICA)应用于气态污染物重叠光谱的光谱分离。通过在实验室和实际大气光谱中分析从固定源收集的混合光谱来验证所提出的方法。分离过程的平均时间消耗小于0.2秒,实验气体的识别率高达100%,如峰值搜索结果和分离谱之间的校正系数的结果所示,分析和标准光谱数据库所示。实际大气光谱的鉴定结果证明,该方法可以有效地识别其浓度变化在测量光谱中的气态污染物,并且它是可以缩短识别时间的有希望的定性光谱分析,以及增加识别率。因此,该方法可以是对现实在线大气污染物检测的传统定性识别方法的有用替代品。

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