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Strong low-pass filtering effects on water vapour flux measurements with closed-path eddy correlation systems

机译:采用闭路涡动相关系统对水汽通量测量的强低通滤波效应

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摘要

Turbulent water vapour fluxes measured with closed-path eddy correlation (EC) systems are unintentionally low-pass filtered by the system in a manner that varies with environmental conditions. Why and how is described here. So is the practical method that systematically corrects long-term flux datasets for this substantial measurement error. In contrast to earlier studies, a large number of spectra and raw data have been used in the analysis to define the low-pass filtering characteristic of the EC system. This revealed that the cut-off frequency of the closed-path EC system for water vapour concentration measurements decreases exponentially with increasing relative humidity. After correction for this unintended filtering, the fluxes are consistent with CO2 and H2O fluxes that were measured with an open-path sensor at the same time. The correction of water vapour flux measurements over a Beech forest in Soro, Zealand, Denmark, amounted on average to 42% of the measured flux, while it was only 4% for the CO2 flux, which was measured with the same EC system. We recommend using the described method to correct water vapour fluxes measured in any closed-path EC system for unintended low-pass filtering effects. Other than for CO2 is the magnitude of the correction for water vapour flux measurements unsatisfactorily high, i.e. the EC system needs to be technically improved. Our results suggest that such high correction can be avoided by keeping relative humidity in the entire gas transport system of the EC system lower than 30%, e.g. by heating intake filters and tubes. (c) 2007 Elsevier B.V. All rights reserved.
机译:用闭路涡流相关(EC)系统测得的湍流水蒸气通量被系统无意识地低通滤波,其方式随环境条件而变化。为什么和如何在这里描述。因此,针对此重大测量误差系统地校正长期通量数据集的实用方法也是如此。与早期研究相比,分析中使用了大量的光谱和原始数据来定义EC系统的低通滤波特性。这表明用于水蒸气浓度测量的闭路EC系统的截止频率随相对湿度的增加呈指数下降。在对此意外过滤进行校正之后,通量与同时使用开路传感器测量的CO2和H2O通量一致。平均水汽通量测量值在丹麦索罗,丹麦西兰的比奇森林中的校正平均为所测通量的42%,而二氧化碳通量仅为该通量EC系统的4%。我们建议使用上述方法来校正在任何闭路EC系统中测得的水蒸气通量,以实现意想不到的低通滤波效果。除了用于CO2以外,用于水蒸气通量测量的校正幅度不能令人满意地高,即EC系统需要在技术上进行改进。我们的结果表明,可以通过将EC系统的整个气体传输系统中的相对湿度保持在30%以下(例如30%)来避免这种高校正。通过加热进气过滤器和管道。 (c)2007 Elsevier B.V.保留所有权利。

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