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arXiv · 2008.02118

Visualization by optical fluorescence of two-phase flow in a three-dimensional porous medium

Abstract

Slow flow of a single fluid through a porous medium is well understood on a macroscopic level through Darcy's law, a linear relation between flow rate and a combination of pressure differences, viscosity, and gravitational forces. Two-phase flow is complicated by the interface separating the fluids, but understanding of two-dimensional, two-phase flow has been obtained from experiments using transparent cells. In most three-dimensional media, however, visual observation is difficult. Here, we present preliminary results of experiments on a model medium consisting of randomly packed glass spheres, in which one fluorescent liquid invades another. By refractive index matching and scanning with a sheet-shaped laser beam, we obtain slices of the flow patterns, which we combine into three-dimensional pictures. We observe a compact region of invading fluid, surrounded by finger-like protrusions. The compact region becomes more dominant with increasing invader flow rate. The patterns are theoretically analyzed in terms of the interplay between gravitational, viscous, and capillary forces.

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Joachim Falck Brodin, Marcel Moura, Renaud Toussaint, Knut Jorgen Maloy, Per Arne Rikvold. 2020-08-05. Visualization by optical fluorescence of two-phase flow in a three-dimensional porous medium. https://doi.org/10.1088/1742-6596/2241/1/012004

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