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Eddy covariance carbonyl sulphide flux measurements with a quantum cascade laser absorption spectrometer

机译:量子级联激光吸收光谱仪测量涡度协方差硫化碳通量

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摘要

The trace gas carbonyl sulphide (COS) has lately received growing interest in the eddy covariance (EC) community due to its potential to serve as an independent approach for constraining gross primary production and canopy stomatal conductance. Thanks to recent developments of fast-response high-precision trace gas analysers (e.g. quantum cascade laser absorption spectrometers (QCLAS)), a handful of EC COS flux measurements have been published since 2013. To date, however, a thorough methodological characterisation of QCLAS with regard to the requirements of the EC technique and the necessary processing steps has not been conducted. The objective of this study is to present a detailed characterization of the COS measurement with the Aerodyne QCLAS in the context of the EC technique, and to recommend best EC processing practices for those measurements. Data were collected from May to October 2015 at a temperate mountain grassland in Tyrol, Austria. Analysis of the Allan variance of high-frequency concentration measurements revealed sensor drift to occur under field conditions after an averaging time of around 50 s. We thus explored the use of two high-pass filtering approaches (linear detrending and recursive filtering) as opposed to block averaging and linear interpolation of regular background measurements for covariance computation. Experimental low-pass filtering correction factors were derived from a detailed cospectral analysis. The CO2 and H2O flux measurements obtained with the QCLAS were compared against those obtained with a closed-path infrared gas analyser. Overall, our results suggest small, but systematic differences between the various high-pass filtering scenarios with regard to the fraction of data retained in the quality control and flux magnitudes. When COS and CO2 fluxes are combined in the so-called ecosystem relative uptake rate, systematic differences between the high-pass filtering scenarios largely cancel out, suggesting that this relative metric represents a robust key parameter comparable between studies relying on different post-processing schemes.
机译:痕量碳羰基硫(COS)最近已引起涡旋协方差(EC)社区的关注,这是因为它有潜力作为约束总初级产量和冠层气孔导度的独立方法。得益于快速响应的高精度痕量气体分析仪(例如量子级联激光吸收光谱仪(QCLAS))的最新发展,自2013年以来已发布了少量EC COS通量测量。然而,迄今为止,QCLAS的详尽方法学表征关于EC技术的要求,尚未执行必要的处理步骤。这项研究的目的是在EC技术的背景下,对Aerodyne QCLAS进行的COS测量进行详细描述,并为这些测量推荐最佳的EC处理方法。数据于2015年5月至2015年10月在奥地利蒂罗尔州的一个温带山区草原上收集。高频浓度测量的Allan方差分析表明,传感器漂移发生在平均条件约为50 s的野外条件下。因此,我们探索了使用两种高通滤波方法(线性去趋势和递归滤波),而不是常规背景测量的块平均和线性插值来进行协方差计算。实验性的低通滤波校正因子来自详细的共谱分析。将通过QCLAS获得的CO2和H2O通量测量值与使用闭路红外气体分析仪获得的测量值进行比较。总体而言,我们的结果表明,就质量控制中保留的数据比例和通量大小而言,各种高通滤波方案之间存在细微但系统的差异。当将COS和CO2通量结合到所谓的生态系统相对吸收率中时,高通滤波方案之间的系统差异将被抵消,这表明该相对指标代表了依赖于不同后处理方案的研究之间可比较的可靠关键参数。 。

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