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Study of Data Processing Based on Differential Optical Absorption Spectroscopy

机译:基于差分光学吸收光谱的数据处理研究

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Differential optical absorption spectroscopy (DOAS) is widely used to measure trace gases in the atmosphere and flue gas from stationary pollution. The technique is based on the recording of differential absorption, the difference between local maxima and minima in the absorption spectrum of the probed gas species. The key procedures in the retrieval algorithms of the recorded DOAS spectra are the separation of the absorption into two parts that represent respectively broad and narrow spectral features and the evaluation of absorption spectra. In this paper three retrieval data processing methods, i.e.,complete integral algorithm, linear least-squares fitting algorithm and Fourier transform filtering algorithm, are studied. The experimental results show that the Fourier transform filtering algorithm has good performance: the maximum deviation is less than 3%. This new method can effectively correct overlapped spectra, reduces the noise and improves the accuracy of the DOAS system. The relative error is smaller than using complete integral algorithm and linear least-squares method.
机译:差分光学吸收光谱(DOA)广泛用于测量大气中的痕量气体,从固定污染中测量烟道气。该技术基于差分吸收的记录,局部最大值与探测气体物种吸收光谱中的局部最大值和最小值之间的差异。记录的DoAS光谱的检索算法中的关键程序是将吸收分为分别宽且窄的光谱特征和吸收光谱的评估。在本文中,研究了三个检索数据处理方法,即完成整体算法,线性最小二乘拟合算法和傅立叶变换滤波算法。实验结果表明,傅里叶变换滤波算法具有良好的性能:最大偏差小于3%。这种新方法可以有效地纠正重叠光谱,降低了噪声并提高了DOAS系统的准确性。相对误差小于使用完整的积分算法和线性最小二乘法。

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