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Diagnosing Coherent Structures in the Convective Boundary Layer by Optimizing Their Vertical Turbulent Scalar Transfer

机译:优化其垂直湍流标量转移来诊断对流边界层的相干结构

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摘要

A new method is introduced to identify coherent structures in the convective boundary layer, based on optimizing the vertical scalar flux in a two-fluid representation of turbulent motions as simulated by a large-eddy simulation. The new approach partitions the joint frequency distribution (JFD) of the vertical velocity and a transported scalar into coherent structures (fluid 2) and their environment (fluid 1) by maximizing that part of the scalar flux resolved by the mean properties in fluid 2 and fluid 1. The proposed method does not rely on any a priori criteria for the partitioning of the flow nor any pre-assumptions about the shape of the JFD. Different flavours of the optimization approach are examined based on maximizing either the total (fluid 1 + fluid 2) or the fluid-2 resolved scalar flux, and on whether all possible partitions or only a subset are considered. These options can result in different derived area fractions for the coherent structures. The properties of coherent structures diagnosed by the optimization method are compared to the conditional sampling of a surface-emitted decaying tracer, in which coherent structures are defined as having tracer perturbation greater than some height-dependent threshold. Results show that the optimization method is able to smoothly define coherent thermal structures in both the horizontal and the vertical. Moreover, optimizing the turbulent transfer by the fluid-2 resolved flux produces very similar coherent structures to the tracer threshold method, especially in terms of their area fraction and updraft velocities. Nonetheless, further analysis of the partitioning of the JFD reveals that, even though the area fraction of coherent structures might be similar, their definition can occupy different quadrants of the JFD, implying the contribution of different physical mechanisms to the turbulent transfer in the boundary layer. Finally, the kinematic and thermodynamic characteristics of the coherent structures are examined based on their definition criteria.
机译:引入了一种新方法以识别对流边界层中的相干结构,基于优化湍流运动中的湍流运动中的垂直标量焊剂,如大涡模拟的模拟。通过最大化通过流体2和流体2中的平均特性分辨的标量磁通量来将垂直速度和传送的标量的接头频率分布(JFD)分配成相干结构(流体2)及其环境(流体1)流体1.该方法不依赖于任何先验标准来分配流量,也不依赖于JFD的形状的任何预假设。基于最大化总(流体1 +流体2)或流体-2解析的标量通量,以及是否考虑了所有可能的分区或仅考虑子集的不同口味,以及考虑不同的味道。这些选项可能导致相干结构的不同导出的区域分数。将通过优化方法诊断的相干结构的性质与表面发射的衰变示踪剂的条件采样进行比较,其中相干结构被定义为具有大于一些高度相关阈值的示踪剂扰动。结果表明,优化方法能够平稳地定义水平和垂直的相干热结构。此外,优化流体-2分辨磁通量的湍流传递产生与示踪剂阈值法产生非常相似的相干结构,尤其是在其面积分数和上升速度方面。尽管如此,对JFD的划分的进一步分析显示,即使相干结构的面积分数可能类似,它们的定义也可以占据JFD的不同象限,这意味着不同物理机制对边界层中的湍流传输的贡献。最后,基于定义标准检查相干结构的运动学和热力学特性。

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