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Two-phase flow in porous media: extending pore-scale mechanics to geologic displacement processes

机译:多孔介质中的两相流:将孔隙尺度力学延伸到地质位移过程

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The Invasion Percolation in a Gradient (IPG) model is capable of incorporating all forces ― viscous (in both the wetting and nonwetting fluids), buoyancy, and capillary forces ― relevant to geologic problems of two-phase flow in a porous medium. Calibration of the IPG model to a pre-existing data set of two-phase flow experiments on glass bead packs shows that the characteristic throat radius R_t is about 10% of the site radius R_s, assuming R_s~R_g, the grain size. Two-dimensional model results of the fractal dimension D and the invasion probability of a throat on the interface are in excellent agreement with predictions for limiting cases of Capillary number Ca and Bond number Bo. In moving from two- to three-dimensional media, trapped wetting clusters do not scale with the extent of the invading cluster, remaining under 5 to 8 pores in size.
机译:梯度(IPG)模型中的侵袭渗透能够包含所有力 - 粘性(在润湿和非刷籽流体中),浮力和毛细管力 - 与多孔介质中两相流的地质问题相关。 IPG模型对玻璃珠包上的两相流试验预先存在的数据集的校准表明,特征喉部半径R_T为位点半径R_S的10%,假设R_S〜R_G,晶粒尺寸。分形尺寸D的二维模型结果和界面上喉咙的侵袭概率与毛细管数CA和键数博的限制案例的预测结果非常一致。在从两个到三维介质中移动时,被困的润湿簇不会随着入侵簇的程度扩展,尺寸为5至8个孔隙。

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