Impact of an intermediate layer on immiscible viscous fingering instability in radial Hele-Shaw cell

IF 5 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Priya Verma , Shih-Wei Hung , Jia-Jun Mao , Ching-Yao Chen
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Abstract

We examine viscous fingering instability in a Hele-Shaw cell involving immiscible fluids with a three-layer fluid–fluid interface for radial flow, experimentally. The impact of introducing an intermediate layer on flow dynamics is explored, with particular attention to viscosity profiles. Our findings reveal that if the intermediate layer creates a non-monotonic viscosity profile, it significantly enhances the instability, leading to denser and more elongated fingering patterns. In particular, when the intermediate layer exhibits maximum viscosity, the growth of fingering patterns is suppressed after penetrating the intermediate layer, causing them to coalesce into a connected region. Key flow parameters such as the viscosity of the intermediate layer and the injection rate, strongly influence instability. Lowering the values of these parameters delays the suppression of instability. However, the injection volume of the intermediate layer decides whether the suppression of instability occurs. In contrast, when the intermediate layer has minimum viscosity, fingering patterns experience continuous growth with an early breakthrough. On the other hand, monotonic viscosity profiles result in less unstable flows due to smoother viscosity contrasts, causing the fingering patterns to channel and form less unstable configurations. These insights advance understanding of the interplay between viscosity profiles and flow parameters in controlling interfacial instabilities. The findings apply to CO2-enhanced oil recovery and groundwater remediation, offering strategies to optimize fluid displacement processes by tailoring flow conditions and viscosity contrasts.
我们通过实验研究了涉及三层流体-流体界面径向流动不相溶流体的 Hele-Shaw 单元中的粘性指状不稳定性。我们探讨了引入中间层对流动动力学的影响,尤其关注了粘度剖面。我们的研究结果表明,如果中间层产生了非单调粘度曲线,就会显著增强不稳定性,导致更密集、更细长的指状模式。特别是,当中间层表现出最大粘度时,指状图案在穿透中间层后会受到抑制,导致它们凝聚成一个相连的区域。中间层粘度和注入率等关键流动参数对不稳定性有很大影响。降低这些参数的值会延迟不稳定性的抑制。然而,中间层的注入量决定了不稳定性是否会被抑制。相反,当中间层的粘度最小时,指法模式会经历早期突破的持续增长。另一方面,单调的粘度剖面由于粘度对比更平滑而导致流动不稳定,从而使指状图案形成通道并形成不稳定的构型。这些见解加深了人们对粘度剖面和流动参数在控制界面不稳定性方面的相互作用的理解。这些发现适用于二氧化碳强化采油和地下水修复,提供了通过调整流动条件和粘度对比优化流体置换过程的策略。
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来源期刊
CiteScore
10.30
自引率
13.50%
发文量
1319
审稿时长
41 days
期刊介绍: International Journal of Heat and Mass Transfer is the vehicle for the exchange of basic ideas in heat and mass transfer between research workers and engineers throughout the world. It focuses on both analytical and experimental research, with an emphasis on contributions which increase the basic understanding of transfer processes and their application to engineering problems. Topics include: -New methods of measuring and/or correlating transport-property data -Energy engineering -Environmental applications of heat and/or mass transfer
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