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首页> 外文期刊>Journal of Lightwave Technology >Tunable Diode Laser Spectroscopy With Wavelength Modulation: A Phasor Decomposition Method for Calibration-Free Measurements of Gas Concentration and Pressure
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Tunable Diode Laser Spectroscopy With Wavelength Modulation: A Phasor Decomposition Method for Calibration-Free Measurements of Gas Concentration and Pressure

机译:具有波长调制的可调谐二极管激光光谱:相量分解法,用于无浓度测量气体浓度和压力

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摘要

The principles and implementation of a phasor decomposition method for analyzing signals in tunable diode laser spectroscopy with wavelength modulation are described. This new technique enables recovery of the isolated and normalized residual amplitude modulation (RAM) signal from measured first harmonic signals at any chosen fundamental modulation frequency. Like the previously reported RAM technique, this new approach is absolute, yielding gas absorption line shape functions, concentrations and pressures without the need for calibration, under certain defined operating conditions. It represents an advancement of the RAM technique in that it obviates the need to operate at a specific high frequency to achieve phase quadrature between the RAM and derivative signals: the signals may be recovered at their maximum levels at any frequency. Measurements of the 1650.96 nm and the 1666.2 nm rotation/vibration absorption line shape functions for 1% and 10% methane in nitrogen at various pressures are compared to theoretical predictions derived from HITRAN data. The excellent agreement confirms the validity of the new technique. Further measurements of concentration and pressure confirm the efficacy of the technique for determining concentration in industrial process environments where the pressure may be unknown and changing. With the above features this new method is particularly suited to stand alone instrumentation for on-line deployment in industrial processes where the calibration factors in the conventional approach would present significant difficulties.
机译:描述了在具有波长调制的可调谐二极管激光光谱中用于分析信号的相量分解方法的原理和实现。这项新技术能够在任何选定的基本调制频率下从测量的一次谐波信号中恢复隔离的归一化残余幅度调制(RAM)信号。像以前报道的RAM技术一样,这种新方法是绝对的,在某些定义的操作条件下,无需校准即可产生气体吸收线形状函数,浓度和压力。它代表了RAM技术的进步,因为它消除了在特定的高频下运行以实现RAM与微分信号之间的相位正交的需要:可以在任何频率下以其最大电平恢复信号。将氮气中1%和10%的甲烷在1650.96 nm和1666.2 nm旋转/振动吸收线形状函数的测量值与从HITRAN数据得出的理论预测值进行比较。出色的协议证实了新技术的有效性。浓度和压力的进一步测量证实了在压力未知或变化的工业过程环境中确定浓度的技术的有效性。具有上述特征,该新方法特别适合用于工业过程中在线部署的独立仪器,而传统方法中的校准因素将带来很大的困难。

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