Physikalisch-Technische Bundesanstalt, Bundesallee 100, 38116 Braunschweig, Germany.
Sensors (Basel). 2023 Apr 27;23(9):4345. doi: 10.3390/s23094345.
The use of optical circular multipass absorption cells (CMPAC) in an open-path configuration enables the sampling free analysis of cylindrical gas flows with high temporal resolution and only minimal disturbances to the sample gas in the pipe. Combined with their robust unibody design, CMPACs are a good option for many applications in atmospheric research and industrial process monitoring. When deployed in an open-path configuration, the effects of inhomogeneities in the gas temperature and composition have to be evaluated to ensure that the resulting measurement error is acceptable for a given application. Such an evaluation needs to consider the deviations caused by spectroscopic effects, e.g., nonlinear effects of temperature variations on the intensity of the spectral line, as well as the interaction of the temperature and concentration field with the characteristic laser beam pattern of the CMPAC. In this work we demonstrate this novel combined evaluation approach for the CMPAC used as part of the tunable diode laser absorption spectroscopy (TDLAS) reference hygrometer in PTB's setup for the characterization of the dynamic response behavior of hygrometers. For this, we measured spatially resolved, 2D temperature and HO concentration distributions, and combined them with spatially resolved simulated spectra to evaluate the inhomogeneity effects on the line area of the used HO spectral line at 7299.43 cm. Our results indicate that for , the deviations caused by the interaction between large concentration heterogeneities and the characteristic sampling of the beam pattern of the CMPAC are three orders of magnitude larger than deviations caused by small temperature heterogeneity induced spectroscopic effects. We also deduce that the assumption that the "path-integrated" HO concentration derived with the open-path CMPAC setup represents an accurate HO area average in the flow section covered by the CMPAC in fact shows significant differences of up to 16% and hence does not hold true when large HO concentration gradients are present.
光学圆形多通吸收池(CMPAC)在开放路径配置中的使用使得对具有高时间分辨率且对管道中样品气体仅有最小干扰的圆柱形气体流的无采样分析成为可能。CMPAC 与它们坚固的整体式设计相结合,是许多大气研究和工业过程监测应用的不错选择。当部署在开放路径配置中时,必须评估气体温度和成分不均匀性的影响,以确保对于给定的应用,由此产生的测量误差是可接受的。这种评估需要考虑由光谱效应引起的偏差,例如,温度变化对谱线强度的非线性影响,以及温度和浓度场与 CMPAC 的特征激光束图案的相互作用。在这项工作中,我们展示了这种新颖的 CMPAC 组合评估方法,该方法用作 PTB 中用于表征湿度计动态响应行为的可调谐二极管激光吸收光谱(TDLAS)参考湿度计的一部分。为此,我们测量了空间分辨的二维温度和 HO 浓度分布,并将它们与空间分辨的模拟光谱相结合,以评估在 7299.43 cm 处使用的 HO 光谱线的线面积上不均匀性的影响。我们的结果表明,对于 ,由大浓度不均匀性与 CMPAC 光束图案特征采样之间的相互作用引起的偏差比由小温度不均匀性引起的光谱效应引起的偏差大三个数量级。我们还推断出,与使用开放路径 CMPAC 装置获得的“路径积分”HO 浓度相比,实际上在 CMPAC 覆盖的流动部分中代表准确的 HO 面积平均值的假设存在显著差异,最大可达 16%,因此当存在大的 HO 浓度梯度时不成立。