Capillary pressure ( P c ) and phase saturation ( S w ) in two-phase flow are well known to be hysteretically related. Thermodynamically-derived multiphase flow theories conjecture that this hysteresis will be lifted if specific interfacial area ( a nw ) is included as a new state variable to create a unique P c -S-a nw surface. Specific interfacial area is defined as the total interfacial area per volume of a porous medium. Several studies have confirmed the existence of a unique P c -S w -a nw surface under equilibrium conditions for a given porous medium. However, there is only one experimental work in the literature, where the unique- ness of this surface under transient conditions was questioned. However, in the data analysis only the terminal menisci were considered to calculate the specific interfacial area. In this paper, we investigate the uniqueness of P c -S-a nw surfaces with and without the inclusion of corner fluid-fluid interfacial area, under different dynamic conditions, in two different micro-models bearing two different (granular vs. triangulated) pore morphologies. We establish a systematic metric to analyze hysteresis under different hydrodynamic conditions.
Revised: November 7, 2019 |
Published: September 1, 2017
Citation
Godinez-Brizuela O.E., N. Karadimitriou, V. Joekar-Niasar, C.A. Shore, and M. Oostrom. 2017.Role of corner interfacial area in uniqueness of capillary pressure-satuation - interfacial area relation under transient conditions.Advances in Water Resources 107.PNNL-SA-136281.doi:10.1016/j.advwatres.2017.06.007