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Impact of the spatial structure of the hydraulic conductivity field on vorticity in three-dimensional flows

机译:水力传导率空间结构对三维流动涡度的影响

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摘要

A material fluid element within a porous medium experiences deformations due to the disordered spatial distribution of the Darcy scale velocity field, caused by the heterogeneity of hydraulic conductivity. A physical consequence of this heterogeneity is the presence of localized kinematical features such as straining, shearing and vorticity in the fluid element. These kinematical features will influence the shape of solute clouds and their fate. Studies on the deformation of material surfaces highlighted the importance of stretching and shearing, whereas vorticity received so far less attention, though it determines folding, a deformation associated with the local rotation of the velocity field. We study vorticity in a three-dimensional porous formation exploring how its fluctuations are influenced by the spatial structure of the porous media, obtained by immersing spheroidal inclusions into a matrix of constant hydraulic conductivity. By comparing porous formations with the same spatial statistics, we analyse how vorticity is affected by the different shape and arrangement of inclusions, defined as the medium ‘microstructure’. We conclude that, as microstructure has a significant impact on vorticity fluctuations, the usual second-order statistical description of the conductivity field is unable to capture local deformations of the plume.
机译:由于水力传导率的非均质性,由于达西尺度速度场的无序空间分布,多孔介质中的材料流体元件会发生变形。这种异质性的物理结果是流体元件中存在局部运动学特征,例如应变,剪切和涡旋。这些运动学特征将影响溶质云的形状及其命运。对材料表面变形的研究突显了拉伸和剪切的重要性,而涡旋虽然决定了折叠,但与速度场的局部旋转有关的变形,尽管受到关注,但涡旋到目前为止受到的关注较少。我们研究了三维多孔地层中的涡度,探讨了其波动如何受到多孔介质空间结构的影响,这种多孔介质是通过将球形夹杂物浸入恒定导水率的矩阵中而获得的。通过比较具有相同空间统计数据的多孔地层,我们分析了包裹体的不同形状和排列(定义为中等“微观结构”)如何影响涡度。我们得出的结论是,由于微结构对涡度波动有重大影响,因此电导率场的常规二阶统计描述无法捕获羽流的局部变形。

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