洞察不相溶两相流通过孔隙结构时指状现象的侵入模式演变

IF 6 1区 工程技术 Q2 ENERGY & FUELS Petroleum Science Pub Date : 2024-10-01 DOI:10.1016/j.petsci.2024.05.009
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引用次数: 0

摘要

指状流体是对不相溶流动过程中稳定位移的挑战,了解指状流体已成为地质碳封存、提高石油采收率和保护地下水的一个关键现象。入侵流体通常受重力、粘性力和毛细力的影响,这些因素导致入侵流体不规则、不完全地占据孔隙空间。以往的研究表明,描述粘性力和毛细力的毛细管数可以量化诱导入侵模式的演变。但在毛细管数恒定以及速度、粘度和界面张力等三个可变参数条件下,入侵模式的演变机制尚未得到深入阐明。我们的研究采用了两种水平可视化系统和两相层流模拟,研究了孔隙尺度下不同参数对入侵模式转变的影响。我们的研究表明,在毛细管数恒定的情况下,在均质孔隙空间中增加侵入粘度或降低界面张力可显著提高清扫效率。此外,在指状交叉模式中,靠近入口的区域容易发生多向入侵的毛细管指状,而靠近出口的区域更容易发生单向入侵的粘性指状。此外,增加入侵粘度或降低入侵速度和界面张力会促进粘指状从出口向入口延伸,从而使随后的入侵流体流向出口。在沿单向路径的侵入干流中,侵入流在靠近出口处呈指数增长,导致侵入界面宽度显著减小。我们的研究成果有望应用于优化异质多孔介质中的侵入模式。
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Insight into evolution of invasive patterns on fingering phenomenon during immiscible two-phase flow through pore structure
Understanding fingering, as a challenge to stable displacement during the immiscible flow, has become a crucial phenomenon for geological carbon sequestration, enhanced oil recovery, and groundwater protection. Typically governed by gravity, viscous and capillary forces, these factors lead invasive fluids to occupy pore space irregularly and incompletely. Previous studies have demonstrated capillary numbers, describing the viscous and capillary forces, to quantificationally induce evolution of invasion patterns. While the evolution mechanisms of invasive patterns have not been deeply elucidated under the constant capillary number and three variable parameters including velocity, viscosity, and interfacial tension. Our research employs two horizontal visualization systems and a two-phase laminar flow simulation to investigate the tendency of invasive pattern transition by various parameters at the pore scale. We showed that increasing invasive viscosity or reducing interfacial tension in a homogeneous pore space significantly enhanced sweep efficiency, under constant capillary number. Additionally, in the fingering crossover pattern, the region near the inlet was prone to capillary fingering with multi-directional invasion, while the viscous fingering with unidirectional invasion was more susceptible occurred in the region near the outlet. Furthermore, increasing invasive viscosity or decreasing invasive velocity and interfacial tension promoted the extension of viscous fingering from the outlet to the inlet, presenting that the subsequent invasive fluid flows toward the outlet. In the case of invasive trunk along a unidirectional path, the invasive flow increased exponentially closer to the outlet, resulting in a significant decrease in the width of the invasive interface. Our work holds promising applications for optimizing invasive patterns in heterogeneous porous media.
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来源期刊
Petroleum Science
Petroleum Science 地学-地球化学与地球物理
CiteScore
7.70
自引率
16.10%
发文量
311
审稿时长
63 days
期刊介绍: Petroleum Science is the only English journal in China on petroleum science and technology that is intended for professionals engaged in petroleum science research and technical applications all over the world, as well as the managerial personnel of oil companies. It covers petroleum geology, petroleum geophysics, petroleum engineering, petrochemistry & chemical engineering, petroleum mechanics, and economic management. It aims to introduce the latest results in oil industry research in China, promote cooperation in petroleum science research between China and the rest of the world, and build a bridge for scientific communication between China and the world.
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