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Comparative Evaluation of an Eulerian CFD and Gaussian Plume Models Based on Prairie Grass Dispersion Experiment

机译:基于草原草扩散实验的欧拉CFD模型与高斯羽流模型的比较评估

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摘要

A theoretical and statistical comparison of a three-dimensional computational fluid dynamics (CFD) model with two Gaussian plume models is proposed on the Prairie Grass data field experiment for neutral conditions, using both maximum arcwise concentrations and spatially paired observations. In theory, it is impossible to have the same near-source behavior with the Eulerian CFD code as with the Gaussian plume models. The former presents the inability to account for the dependence of the turbulent diffusivity to the distance from the source, contrary to plume models for which this dependence is fitted to observations. The study described herein looks at the practical implications of these theoretical differences by comparing the two different types ofmodels on a flat-terrain case, a situation favoring Gaussian models. The results herein show that the Eulerian CFD model gives acceptable results, both for arc-maximum concentrations and spatially paired observations. Indeed, the statistical performances are above the criteria of "good performance" commonly defined in literature. In general, the results for Eulerian code fall between those of a Gaussian model that has been fitted using the Prairie Grass dataset and those of one fitted with different datasets.
机译:在草原草丛数据场实验中,针对中性条件,使用最大弧向浓度和空间配对观测值,提出了具有两个高斯羽流模型的三维计算流体动力学(CFD)模型的理论和统计比较。从理论上讲,使用欧拉CFD代码和高斯羽流模型不可能具有相同的近源行为。前者无法解释湍流扩散率与到源的距离的相关性,这与羽状模型相对应,后者适合于观测。本文所述的研究通过在平坦地形的情况下比较两种不同类型的模型来研究这些理论差异的实际含义,这种情况有利于高斯模型。本文的结果表明,对于最大弧度浓度和空间配对观测,欧拉CFD模型均给出可接受的结果。实际上,统计性能高于文献中通常定义的“良好性能”标准。通常,欧拉代码的结果介于使用草原草数据集拟合的高斯模型的结果和具有不同数据集拟合的高斯模型的结果之间。

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