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Disentangling Turbulent Gas Diffusion from Non-diffusive Transport in the Boundary Layer

机译:解开湍流气体扩散在边界层中的非漫射输送

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摘要

An analysis based on the law of linear momentum conservation demonstrates unequivocally that the mass fraction is the scalar whose gradient determines gas diffusion, both molecular and turbulent. It illustrates sizeable errors in previous micrometeorological definitions of the turbulent gas flux based on fluctuations in other scalars such as the mixing ratio or density. In deference to conservation law, we put forth a new definition for the turbulent gas flux. Net gas transport is then defined as the sum of this turbulent flux with systematic transport by the mean flow. This latter, non-diffusive flux is due to the net upward boundary-layer momentum, a Stefan flow forced by evaporation, which is the dominant surface gas exchange. A comparison with the traditional methodology shows exact agreement between the two methods regarding the net flux, but with the novelty of partitioning gas transport according to distinct physical mechanisms. The non-diffusive flux is seen to be non-negligible in general, and to dominate turbulent transport under certain conditions, with broad implications for boundary-layer meteorology.
机译:基于线性动量保守定律的分析明确地说明了质量分数是梯度决定气体扩散,分子和湍流的标量。它说明了基于其他标量的波动的湍流气体通量的先前微观定义中的相当误差,例如混合比或密度。在缩短保护法中,我们提出了一种湍流气体通量的新定义。然后将净气体传输定义为这种湍流通量的总和,通过平均流动系统的运输。这是后者,非漫射通量是由于净向上边界层的动力,蒸发迫使梯形流动,这是主要的表面气体交换。与传统方法的比较显示了关于净助焊剂的两种方法之间的确切一致性,但根据不同的物理机制,具有分配气体运输的新颖性。通常,非扩散磁通量通常是不可忽视的,并且在某些条件下支配湍流运输,具有广泛的边界层气象学意义。

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