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An Analytical Method to Find the Optimal Parameters for Gas Detectors based on Correlation Spectroscopy using a Fabry-Perot Interferometer

机译:基于相关光谱的法布里-珀罗干涉仪寻找气体探测器最佳参数的分析方法

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Several designs of infrared absorption based gas detector use a Fabry-Perot Interferometer (FPI) to modulate the incident light. In these systems, generally the FPI's fringes are matched with very well defined rotational absorption lines of a target molecule such as CO2, CO, N2O, CH4, etc. In order to obtain modulation the cavity length of the FPI is scanned over one half of the reference wavelength. In this work, we present a simple analytical method based on the Fourier Transform that describes the performance of these systems. Using this method the optimal reflectivity and optical spacing of the FPI can be determined. Furthermore, the modulated signal generated by the system as a function of the cavity length scan can be calculated by applying the inverse Fourier Transform. Finally, this method describes the underlying reasons why for some filters the background amplitude is severe, and gives guidance on the choice of optimised filters. Our method evaluates the optimal FPI parameters and the modulated signal much faster than the direct numerical computation which is used currently. Simulation results for different molecules in combination with diverse filters shapes are presented, with a comparison to directly computed results.
机译:基于红外吸收的气体检测器的几种设计都使用法布里-珀罗干涉仪(FPI)调制入射光。在这些系统中,通常将FPI的边缘与目标分子(例如CO2,CO,N2O,CH4等)定义非常明确的旋转吸收线相匹配。为了获得调制,需要对FPI的腔长进行一半的扫描。参考波长。在这项工作中,我们提出了一种基于傅立叶变换的简单分析方法,该方法描述了这些系统的性能。使用这种方法,可以确定FPI的最佳反射率和光学间距。此外,可以通过应用傅立叶逆变换来计算系统根据腔长扫描生成的调制信号。最后,该方法描述了某些滤波器背景振幅严重的根本原因,并为选择最佳滤波器提供了指导。与目前使用的直接数值计算相比,我们的方法评估最佳FPI参数和调制信号的速度要快得多。给出了结合不同形状的过滤器的不同分子的模拟结果,并与直接计算的结果进行了比较。

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