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A lattice Boltzmann study on the impact of the geometrical properties of porous media on the steady state relative permeabilities on two-phase immiscible flows

机译:格子Boltzmann研究多孔介质的几何性质对两相不混溶流动稳态相对渗透率的影响

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In the current paper, the effect of the geometrical characteristics of 2-D porous media on the relative permeability in immiscible two-phase flows is studied. The generation of the different artificial porous media is performed using a Boolean model based on a random distribution of overlapping circles/ellipses, the size and shape of which are chosen to satisfy the specific Minkowski functionals (i.e. volume fraction, solid line contour length, connectivity). The study aims to identify how each different Minkowski functional affects the relative permeability of each phase at various saturations of the non-wetting phase. A 2-D multi-relaxation time (MRT) lattice Boltzmann model (LBM) that can handle high density ratios is employed in the simulation. The relationship between the driving forces G and the relative permeabilities of the two phases for every artificial structure is quantified. It is found that for high non-wetting phase saturations (fully connected flow), a non-linear relationship exists between the non-wetting phase flow rate and the driving force, whilst this relationship becomes linear at higher magnitudes of the latter. The force magnitude required to approach the linear region is highly influenced by the pore size distribution and the connectivity of the solid phase. For lower non-wetting phase saturation values, its relative permeability in the linear regime decreases as the fraction of small pores in the structure increases and the non-wetting phase flow becomes disconnected. A strong influence of the solid phase connectivity is also observed. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在本文中,研究了二维多孔介质的几何特征对不相溶两相流中相对渗透率的影响。使用基于重叠圆/椭圆的随机分布的布尔模型执行不同人工多孔介质的生成,选择它们的大小和形状以满足特定的Minkowski功能(即体积分数,实线轮廓长度,连通性) )。该研究旨在确定在非润湿相的各种饱和度下,每个不同的Minkowski功能如何影响每个相的相对磁导率。在仿真中采用了可以处理高密度比的二维多重弛豫时间(MRT)格子Boltzmann模型(LBM)。对于每个人造结构,驱动力G和两相的相对磁导率之间的关系被量化。已经发现,对于高的非润湿相饱和度(全连通流),在非润湿相流速和驱动力之间存在非线性关系,而在驱动力较高时,该关系变为线性。接近线性区域所需的力大小在很大程度上受孔径分布和固相连接性的影响。对于较低的非润湿相饱和度值,其线性状态下的相对渗透率会随着结构中小孔比例的增加而降低,并且非润湿相流会断开。还观察到固相连接性的强烈影响。 (C)2015 Elsevier Ltd.保留所有权利。

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