多孔介质浸润过程中的断裂:机理、影响因素和影响

Eng Pub Date : 2023-11-17 DOI:10.3390/eng4040163
Guiheng Li, Jia Yao
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引用次数: 0

摘要

多孔介质浸润过程中的卡脱现象是一种基本的两相流体流动现象,在原油生产和二氧化碳(CO2)利用与封存中都起着至关重要的作用。在两相共存的多孔介质中,相界面的不稳定性可能导致各种位移现象,包括孔体填充、活塞式位移和卡断。其中,以产生离散液滴或气泡为特征的卡断现象最为重要。本研究全面概述了扣压机制、影响因素和影响。在狭窄的区域内,两相界面的曲率半径发生变化,主要受毛细管压力的影响,从而引发卡断。影响因素包括多相流体的特性、多孔介质的润湿性以及多孔介质中孔隙咽喉的几何形状和拓扑结构。反过来,断裂又会对多孔介质内的流体动力学产生明显影响,导致无法回收的油滴形成、油桥效应、排水-吸附滞后、强泡沫生成和瞬态/动态效应等影响。虽然在石油生产的常规注水过程中,快断现象会产生有害影响,但在二氧化碳-EOR 和二氧化碳封存过程中,利用快断现象的潜力则会产生有益的结果。这项研究极大地推动了我们对快断现象及其在多相流体动力学中多方面作用的理解,为精确预测流体流动行为和战略控制提供了重要见解。这些有价值的见解可以作为理论基础,指导我们有意识地调节快断现象,从而优化石油采收过程,提高二氧化碳封存的安全性和稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Snap-Off during Imbibition in Porous Media: Mechanisms, Influencing Factors, and Impacts
The phenomenon of snap-off during imbibition in porous media, a fundamental two-phase fluid flow phenomenon, plays a crucial role in both crude oil production and carbon dioxide (CO2) utilization and storage. In porous media where two phases coexist, the instability of the phase interface may give rise to various displacement phenomena, including pore–body filling, piston-like displacement, and snap-off. Snap-off, characterized by the generation of discrete liquid droplets or gas bubbles, assumes paramount significance. This study provides a comprehensive overview of snap-off mechanisms, influencing factors, and impacts. Snap-off initiation arises from variations in the curvature radius at the interface between two phases within narrow regions, primarily influenced by capillary pressure. It can be influenced by factors such as the characteristics of multiphase fluids, the wettability of porous media, as well as the pore–throat geometry and topology within porous media. In turn, snap-off exerts a discernible influence on the fluid dynamics within the porous medium, resulting in impacts that encompass unrecoverable oil droplet formation, the oil bridging effect, drainage–imbibition hysteresis, strong foam generation and transient/dynamic effects. Although the snap-off phenomenon exerts detrimental effects during the conventional waterflooding in oil production, its potential is harnessed for beneficial outcomes in CO2-EOR and CO2 storage. This study significantly advances our understanding of snap-off and its multifaceted roles in multiphase fluid dynamics, offering vital insights for the precise prediction of fluid flow behavior and strategic control. These valuable insights can serve as a theoretical foundation to guide our deliberate modulation of snap-off phenomena, aiming at optimizing oil-recovery processes and enhancing the safety and stability of CO2 storage.
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Eng
Eng
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2.10
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