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Fluid flow in porous media using image-based modelling to parametrize Richards equation

机译:使用基于图像的建模参数化Richards方程的多孔介质中的流体流动

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摘要

The parameters in Richards' equation are usually calculated from experimentally measured values of the soil–water characteristic curve and saturated hydraulic conductivity. The complex pore structures that often occur in porous media complicate such parametrization due to hysteresis between wetting and drying and the effects of tortuosity. Rather than estimate the parameters in Richards' equation from these indirect measurements, image-based modelling is used to investigate the relationship between the pore structure and the parameters. A three-dimensional, X-ray computed tomography image stack of a soil sample with voxel resolution of 6 μm has been used to create a computational mesh. The Cahn–Hilliard–Stokes equations for two-fluid flow, in this case water and air, were applied to this mesh and solved using the finite-element method in COMSOL Multiphysics. The upscaled parameters in Richards' equation are then obtained via homogenization. The effect on the soil–water retention curve due to three different contact angles, 0°, 20° and 60°, was also investigated. The results show that the pore structure affects the properties of the flow on the large scale, and different contact angles can change the parameters for Richards' equation.
机译:理查兹方程中的参数通常根据土壤-水特征曲线和饱和导水率的实验测量值计算得出。由于在润湿和干燥之间的滞后以及曲折的影响,通常在多孔介质中出现的复杂孔结构使这种参数化变得复杂。基于图像的建模不是研究由这些间接测量值估算的Richards方程中的参数,而是用于研究孔结构与参数之间的关系。使用三维三维X射线计算机断层扫描图像,以6微米的体素分辨率对土壤样品进行成像,以创建计算网格。将两种流体(在这种情况下为水和空气)的Cahn–Hilliard–Stokes方程应用于该网格,并使用COMSOL Multiphysics中的有限元方法求解。然后通过均质化获得Richards方程中的放大参数。还研究了三种不同的接触角(0°,20°和60°)对土壤-水保留曲线的影响。结果表明,孔结构在很大程度上影响了流动特性,不同的接触角可以改变理查兹方程的参数。

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