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Fitting of calibration-free scanned-wavelength-modulation spectroscopy spectra for determination of gas properties and absorption lineshapes

机译:拟合免校准扫描波长调制光谱以确定气体性质和吸收线形

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The development and initial demonstration of a scanned-wavelength, first-harmonic-normalized, wavelength-modulation spectroscopy with nf detection (scanned-WMS-nf/1f) strategy for calibration-free measurements of gas conditions are presented. In this technique, the nominal wavelength of a modulated tunable diode laser (TDL) is scanned over an absorption transition to measure the corresponding scanned-WMS-nf/1f spectrum. Gas conditions are then inferred from least-squares fitting the simulated scanned-WMS-nf/1f spectrum to the measured scanned-WMS-nf/1f spectrum, in a manner that is analogous to widely used scanned-wavelength direct-absorption techniques. This scanned-WMS-nf/1f technique does not require prior knowledge of the transition linewidth for determination of gas properties. Furthermore, this technique can be used with any higher harmonic (i.e., n > 1), modulation depth, and optical depth. Selection of the laser modulation index to maximize both signal strength and sensitivity to spectroscopic parameters (i.e., gas conditions), while mitigating distortion, is described. Last, this technique is demonstrated with two-color measurements in a well-characterized supersonic flow within the Stanford Expansion Tube. In this demonstration, two frequency-multiplexed telecommunication-grade TDLs near 1.4 μm were scanned at 12.5 kHz (i.e., measurement repetition rate of 25 kHz) and modulated at 637.5 and 825 kHz to determine the gas temperature, pressure, H_2O mole fraction, velocity, and absorption transition lineshape. Measurements are shown to agree within uncertainty (1%-5%) of expected values.
机译:介绍了一种用于无条件测量气体条件的扫描波长,初谐波归一化,波长调制光谱和nf检测(scanned-WMS-nf / 1f)策略的开发和初步演示。在此技术中,在吸收跃迁上扫描已调制可调二极管激光器(TDL)的标称波长,以测量相应的已扫描WMS-nf / 1f光谱。然后,以类似于广泛使用的扫描波长直接吸收技术的方式,从将模拟扫描WMS-nf / 1f光谱拟合到测量扫描WMS-nf / 1f光谱的最小二乘方推断出气体条件。这种扫描的WMS-nf / 1f技术不需要先验转换线宽即可确定气体性质。此外,该技术可以用于任何更高的谐波(即,n> 1),调制深度和光学深度。描述了选择激光调制指数以最大化信号强度和对光谱参数(即气体条件)的灵敏度,同时减轻失真。最后,在斯坦福膨胀管内特征明确的超音速流中,通过两种颜色的测量来证明该技术。在本演示中,以12.5 kHz(即25 kHz的测量重复率)扫描了1.4μm附近的两个频率复用电信级TDL,并以637.5和825 kHz进行了调制,以确定气体温度,压力,H_2O摩尔分数,速度和吸收过渡线形。显示测量值在预期值的不确定度(1%-5%)内一致。

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