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Direct numerical simulation of particle pore-scale transport through three-dimensional porous media with arbitrarily polyhedral mesh

机译:通过三维多孔介质与任意多面体网的三维多孔介质直接数值模拟

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A new direct numerical simulation algorithm is developed for particle pore-scale transport through the porous media with arbitrarily polyhedral mesh. In the algorithm, the Navier-Stokes Equation is used to describe the continuous phase motion in the Eulerian framework: Newton's Second Law is used to describe the particle dynamics in the Lagrangian framework; Discrete element method is used to describe the particle-particle interactions and particle-wall interactions; RIGID is used to detect the contact state between particles with arbitrarily shaped pore walls. To suppress the spurious force oscillations (SFO) and improve the numerical accuracy of the evaluation of fluid-particle interaction, a novel consistent fictitious domain method (CFDM) in the arbitrarily collocated polyhedral mesh is developed. Numerical results of six test cases show that CFDM is accurate and second order in space, and no obvious SFO is found. Finally, the new direct numerical simulation algorithm is used to simulate the particle transport through three-dimensional porous media reconstructed from micro-CT scans from a real rock. The numerical results of a serial of tests with different particle sizes reveal several distinct microscopic flow mechanisms and the corresponding macroscopic characteristics. The change of channel resistance leads to the formation of particle motion paths in succession; Along a certain motion path, the particle moving velocity can be different at different sites: With the increase of particle size, the particle average retention time and particle average transit time increase: Particle velocity presents lognormal distribution, which becomes wider with the increase of partide size. The newly developed algorithm can be adopted as a direct numerical simulation tool to simulate particle motion in arbitrarily complex pore space. (C) 2020 Elsevier B.V. All rights reserved.
机译:开发了一种新的直接数值模拟算法,用于通过具有任意多面体网的多孔介质的粒子孔隙传输。在算法中,Navier-Stokes方程用于描述Eulerian框架中的连续相运动:牛顿的第二法用于描述拉格朗日框架中的粒子动态;离散元件方法用于描述颗粒颗粒相互作用和颗粒壁相互作用;刚性用于检测具有任意形状孔壁的颗粒之间的接触状态。为了抑制杂散的力振荡(SFO)并提高流体颗粒相互作用评估的数值准确性,开发了任意切割的多面体网上的新型一致的虚拟结构域法(CFDM)。六个测试用例的数值结果表明,CFDM是准确的,空间中的第二顺序,没有发现明显的SFO。最后,新的直接数值模拟算法用于通过从真正的岩石重建的三维多孔介质通过三维多孔介质模拟粒子传输。具有不同颗粒尺寸的串联测试的数值结果揭示了几种不同的显微流动机制和相应的宏观特征。通道电阻的变化导致连续地形成粒子运动路径;沿着一定的运动路径,颗粒移动速度在不同的位置可以是不同的:随着粒度的增加,粒径保持时间和粒子平均转移时间增加:粒子速度呈现逻辑正态分布,随着伴侣的增加而变宽尺寸。新开发的算法可以作为直接数值模拟工具来模拟任意复杂的孔隙空间中的粒子运动。 (c)2020 Elsevier B.V.保留所有权利。

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