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PMID: 31554836 Published · epublish English Journal Article

Inertia Controlled Capillary Pressure at the Juncture between Converging and Uniform Channels.

Scientific reports ·Vol. 9 ·No. 1 ·2019-09-25 ·页码 13870

Rabbani HS, Seers TD

Abstract

In this research, we reveal the transient behavior of capillary pressure as the fluid-fluid interface travels across the juncture between a converging and uniform capillary, via high-resolution CFD (Computational Fluid Dynamics) simulations. Simulations were performed at different wetting conditions (strong-wet and intermediate-wet) and capillary wall convergence angles. Our results demonstrate that as the angle of convergence increases, capillary pressure at the junction decreases commensurately. Moreover, in contrast to strong-wet conditions, the profile of capillary pressure at the converging-uniform capillary juncture under intermediate-wet conditions is highly non-monotonic, being characterized by a parabola-like form. This non-monotonic behavior is a manifestation of strong inertial forces governing dynamic fluid-fluid interface morphology. This yields conditions that promote the advancement of the fluid-fluid interface, as inertial forces partially nullify the capillary pressure required for the immiscible interface to enter the uniform capillary. In addition to numerical analysis detailed above, a novel theoretical stability criteria that is capable of distinguishing between stable (capillary dominated) and unstable (inertia dominated) interfacial regimes at the converging-uniform capillary juncture is also proposed. In summary, this fundamental study offers new insights into the interface invasion protocol, and paves the way for the re-evaluation of capillary junction controlled interfacial dynamics.

作者与单位
共 2 位作者,点击展开单位 / ORCID
Rabbani Harris Sajjad
Department of Petroleum Engineering, Texas A&M University at Qatar, Education City, Doha, Qatar. [email protected].
Seers Thomas Daniel
Department of Petroleum Engineering, Texas A&M University at Qatar, Education City, Doha, Qatar.
Article Info
Journal
Scientific reports
Abbr.
Sci Rep
ISSN
2045-2322
Corresponding email
Published
2019-09-25
电子出版
2019-00-25
页码
13870
Language
English
Country/Region
England
NLM ID
101563288
基金资助
Qatar National Research Fund (QNRF) · NPRP10-0104-170104
Qatar National Research Fund (QNRF) · NPRP10-0104-170104
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