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Estimating the Random Error in Eddy-Covariance Based Fluxes and Other Turbulence Statistics: The Filtering Method

机译:估计基于涡度-协方差的通量和其他湍流统计量中的随机误差:滤波方法

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摘要

A spatially local decomposition of turbulent fluxes based on properties of spatial filters is used to develop a new method of estimating random error in turbulent moments of any order. The proposed error estimation method does not require an estimate of the integral time scale, which can be highly sensitive to the method used to calculate it. The error estimation method is validated using synthetic flux data with a known ensemble mean and intercompared with existing methods using data from the Advection Horizontal Array Turbulence Study (AHATS). Typical errors for a 27.3-min block of data collected at a height of 8 m are found to be approximately 10% for the heat flux and 7-15% for variances. The error in the momentum flux increases rapidly with increasing atmospheric instability, reaching values of 40% or greater for unstable conditions. A new method based on filtering is also proposed to estimate integral time scales of turbulent quantities.
机译:基于空间滤波器特性的湍流通量在空间上的局部分解被用于开发一种估计任意阶次湍流矩中的随机误差的新方法。所提出的误差估计方法不需要估计整体时标,这对于用于计算它的方法可能非常敏感。使用具有已知整体平均值的合成通量数据验证误差估计方法,并使用对流水平阵列湍流研究(AHATS)的数据与现有方法进行比较。对于在8 m高度处收集的27.3分钟数据块,典型误差对于热通量约为10%,对于方差约为7-15%。动量通量的误差随着大气不稳定性的增加而迅速增加,在不稳定条件下达到40%或更大。还提出了一种基于滤波的新方法来估计湍流量的积分时间尺度。

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