Erpelding Marion, Sinha Santanu, Tallakstad Ken Tore, Hansen Alex, Flekkøy Eirik Grude, Måløy Knut Jørgen
Department of Physics, University of Oslo, P. O. Box 1048 Blindern, N-0316 Oslo, Norway.
Department of Physics, Norwegian University of Science and Technology, N-7491 Trondheim, Norway.
Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Nov;88(5):053004. doi: 10.1103/PhysRevE.88.053004. Epub 2013 Nov 7.
It is well known that the transient behavior during drainage or imbibition in multiphase flow in porous media strongly depends on the history and initial condition of the system. However, when the steady-state regime is reached and both drainage and imbibition take place at the pore level, the influence of the evolution history and initial preparation is an open question. Here, we present an extensive experimental and numerical work investigating the history dependence of simultaneous steady-state two-phase flow through porous media. Our experimental system consists of a Hele-Shaw cell filled with glass beads which we model numerically by a network of disordered pores transporting two immiscible fluids. From measurements of global pressure evolution, histograms of saturation, and cluster-size distributions, we find that when both phases are flowing through the porous medium, the steady state does not depend on the initial preparation of the system or on the way it has been reached.
众所周知,多孔介质中多相流排水或吸渗过程中的瞬态行为强烈依赖于系统的历史和初始条件。然而,当达到稳态状态且排水和吸渗都在孔隙水平发生时,演化历史和初始状态的影响仍是一个悬而未决的问题。在此,我们展示了一项广泛的实验和数值研究工作,探究通过多孔介质的同时稳态两相流的历史依赖性。我们的实验系统由一个填充玻璃珠的赫勒-肖槽组成,我们通过传输两种不混溶流体的无序孔隙网络对其进行数值模拟。通过对全局压力演化、饱和度直方图和团簇尺寸分布的测量,我们发现当两相都流经多孔介质时,稳态不依赖于系统的初始状态或达到该状态的方式。