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Combined Lattice Boltzmann and phase-field simulations for incompressible fluid flow in porous media

机译:结合Lattice Boltzmann和相场模拟的多孔介质中不可压缩流体流动

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A Lattice-Boltzmann method for incompressible fluid flow is coupled with the dynamic equations of a phase-field model for multiple order parameters. The combined model approach is applied to computationally evaluate the permeability in porous media. At the boundaries between the solid and fluid phases of the porous microstructure, we employ a smooth formulation of a bounce-back condition related to the diffuse profile of the interfaces. We present simulations of fluid flow in both, static porous media with stationary non-moving interfaces and microstructures performing a dynamic evolution of the phase and grain boundaries. For the latter case, we demonstrate applications to dissolving grain structures with partial melt inclusions and computationally analyse the temporal evolution of the microporosity under wetting conditions at the melt-grain boundaries. In any development state of the material, the Darcy number and the hydraulic conductivity of the porous medium are evaluated for various types of fluid.
机译:针对不可压缩流体流动的莱迪思-波尔兹曼方法与多阶参数的相场模型的动力学方程相结合。组合模型方法用于计算评估多孔介质中的渗透率。在多孔微结构的固相和液相之间的边界处,我们采用了与界面扩散分布有关的回弹条件的平滑公式。我们介绍了在静态,多孔的静态流体介质中的流体流动仿真,这些静态多孔介质具有固定的非移动界面和执行相态和晶界动态演化的微结构。对于后一种情况,我们演示了在溶解具有部分熔体夹杂物的晶粒结构中的应用,并通过计算分析了在湿润条件下在熔体晶界处微孔的时间演化。在材料的任何发展状态下,都针对各种类型的流体评估了达西数和多孔介质的水力传导率。

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