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A Functional Approach to Vertical Turbulent Transport of Scalars in the Atmospheric Surface Layer

机译:大气表面层垂直湍流运输的功能方法

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摘要

Eddy covariance has been the de facto method of analyzing scalar turbulent transport data. To refine the information available from these data, we derive a simplified version of the turbulent scalar-transport equation for the surface layer, which employs a more explicit form of signal decomposition and dispenses with Reynolds averaging in favour of an averaging operator based on the relevant scalar-flux driving variables. The resulting method, termed functional covariance, provides five areas of improvement in flux estimation: (i) Better representation of surface fluxes through closer correspondence of turbulent exchange with variations in the driving variables. (ii) An approximate 25% reduction in flux uncertainty resulting from improved independence of turbulent-flux samples. (iii) Improved data retention through less onerous quality control (stationarity) testing. (iv) Improved estimation of low-frequency flux contributions through reduced uncertainty and avoidance of driving-variable nonstationarity. (v) Potential elimination of flux-storage estimation when state driving-variables are used to define the functional-covariance flux averaging. We describe the important considerations required for application of functional covariance, apply both functional- and eddy-covariance methods to an example dataset, compare the resulting eddy- and functional-covariance estimates, and demonstrate the aforementioned benefits of functional covariance.
机译:EDDY协方差是分析标量动荡数据的事实上的方法。为了优化这些数据可获得的信息,我们推导了表面层的湍流标量传输方程的简化版本,其采用更明确的信号分解形式,并使用reynolds基于相关的平均运算符进行平均标量磁通驱动变量。所得到的方法称为功能协方差,提供了五个改善的磁通估计的改进区域:(i)通过更接近湍流交换与驱动变量的变化更靠近湍流交换的对应性更好地表示。 (ii)由于湍流通量样本的独立性改善而导致的助焊剂不确定度降低约25%。 (iii)通过不太繁重的质量控制(实用性)测试改善数据保留。 (iv)通过降低不确定性和避免驱动变量的非间抗性,改善了低频通量贡献的估计。 (v)当使用状态驱动变量来定义功能 - 协方差磁通平均时,潜在消除磁通存储估计。我们描述了应用功能协方差所需的重要考虑因素,将功能和辅助协方差方法应用于示例数据集,比较由此产生的涡流和功能 - 协方差估计,并展示了功能协方差的上述益处。

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