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在收敛通道与均匀通道交界处的惯性控制毛细管压力。

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

作者信息

Rabbani Harris Sajjad, Seers Thomas Daniel

机构信息

Department of Petroleum Engineering, Texas A&M University at Qatar, Education City, Doha, Qatar.

出版信息

Sci Rep. 2019 Sep 25;9(1):13870. doi: 10.1038/s41598-019-49588-x.

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.

摘要

在本研究中,我们通过高分辨率计算流体动力学(CFD)模拟,揭示了当流体 - 流体界面穿过收缩型和均匀型毛细管之间的接合处时毛细管压力的瞬态行为。模拟在不同的润湿性条件(强润湿性和中等润湿性)以及毛细管壁收敛角度下进行。我们的结果表明,随着收敛角度的增加,接合处的毛细管压力相应降低。此外,与强润湿性条件不同,中等润湿性条件下收缩 - 均匀型毛细管接合处的毛细管压力分布高度非单调,呈现出类似抛物线的形式。这种非单调行为是控制动态流体 - 流体界面形态的强大惯性力的表现。这产生了促进流体 - 流体界面推进的条件,因为惯性力部分抵消了不混溶界面进入均匀毛细管所需的毛细管压力。除了上述数值分析之外,还提出了一种新颖的理论稳定性标准,该标准能够区分收缩 - 均匀型毛细管接合处的稳定(毛细管主导)和不稳定(惯性主导)界面状态。总之,这项基础研究为界面侵入协议提供了新的见解,并为重新评估毛细管接合处控制的界面动力学铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/700a/6761262/08a54586b712/41598_2019_49588_Fig1_HTML.jpg

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