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首页> 外文期刊>Boundary-layer Meteorology >Turbulence Coherence Within Canonical and Realistic Aeolian Dune-Field Roughness Sublayers
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Turbulence Coherence Within Canonical and Realistic Aeolian Dune-Field Roughness Sublayers

机译:典型和现实风中的湍流相干性,现实的风景沙丘 - 野外粗糙度子层

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Large-eddy simulation has been used to study the formation and spatial nature of inertia-dominated turbulent flows responding to aeolian sand dunes. The former is recovered from simulations initialized with a Reynolds-averaged flow, without any small-scale features, which highlights the emergence of salient structures within the dune-field roughness sublayer (RSL). The latter is based upon computation of integral lengths. In the interest of generality, these exercises are based upon flow over canonical dune geometries-which serve as a comparative benchmark-and flow over a section of the White Sands National Monument aeolian dune field in southern New Mexico. These cases, thus, capture a vast range of complexity. In both applications, we report the emergence of mixing-layer-like processes-as per results for other canopy flows-although the distinct geometric nature of the dunes shows the prevalence of a persistent interdune roller, which is aligned most closely with the streamwise direction. In order to demonstrate underlying similarities in the processes occuring above idealized and natural dune fields, we normalize the integral lengths by characteristic length scales: vorticity thickness, attached-eddy-hypothesis mixing length, and dissipation length. This exercise reveals a distinct growth and collapse pattern that is robust across all considered dune arrangements. Herein, 'growth' refers to the stage of downflow thickening of vortices produced via vortex shedding off the upflow dune; growth is regulated by the lesser of the distance to the wall or distance to the upflow dune, where the latter marks the beginning of the 'collapse' stage. Both are compliant with the notion of wall-attached eddies. In the RSL, we demonstrate that the integral lengths exhibit an optimal collapse when normalized by vorticity thickness, while inertial layer scaling is attained as close as one dune height above the top of the dune canopy. These results help to establish dune-field RSL dynamics within the broader context of canopy turbulence, which is important given the relatively greater efforts devoted to flows over vegetative canopies and urban environments.
机译:大涡模拟已被用于研究惯性主导的湍流流动的形成和空间性质,响应Aeolian Sand Dunes。从使用雷诺平均流程初始化的模拟中恢复前者,没有任何小规模的特征,这突出了沙丘场粗糙度子层(RSL)内的突出结构的出现。后者基于整体长度的计算。符合普遍性的兴趣,这些练习基于规范沙丘几何形状的流动 - 这是一个比较基准 - 并在新墨西哥州南部的白色沙子国家纪念碑沙丘地区的一部分。因此,这些病例捕获了大量复杂性。在这两种应用中,我们报告了混合层状过程的出现 - 根据其他树冠流动的结果 - 尽管沙丘的不同几何性质显示持续的间隔辊的普遍性,其与流动方向最密切地对齐。为了展示在理想化和自然沙丘场的过程中的过程中的基础相似性,我们通过特征长度尺度正常化整体长度:涡度厚度,附着涡流混合长度和耗散长度。这项练习揭示了跨越所有被认为的沙丘安排的明显生长和崩溃模式。在此,“生长”是指通过涡流脱落的涡流的涡流的下流增厚阶段;生长受到墙壁距离的较小距离或与上流沙丘的距离的调节,后者标志着“崩溃”阶段的开始。两者都符合墙壁附属的漩涡的概念。在RSL中,我们证明整体长度在通过涡度厚度归一化时表现出最佳的坍塌,而惯性层缩放如沙丘冠层顶部上方的一个沙丘高度接近。这些结果有助于在冠层湍流的更广泛的范围内建立沙丘场RSL动力学,这对于在植物吞木和城市环境中流动的相对更大的努力来说是重要的。

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