Pore-Scale Modeling of Gas–Oil Two-Phase Flow Based on the Phase-Field Method—A Case Study of Glutenite Reservoirs in China

IF 2.8 4区 工程技术 Q2 ENGINEERING, CHEMICAL Processes Pub Date : 2024-08-08 DOI:10.3390/pr12081670
Ya Tian, Li Yang, Yi Chen, Zhongkai Bai, Youxing Yang, Jianwei Wu, Suling Wang
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Abstract

This work employs the phase field method combined with a realistic microscopic heterogeneous pore structure model to conduct numerical simulations of CO2–oil two-phase flow. This study investigates the diffusion behavior of CO2 during the displacement process and analyzes the impact of various parameters such as the flow rate, the contact angle, and interfacial tension on the displacement effect. The results indicate that, over time, saturated oil is gradually replaced by CO2, which primarily flows along channels with larger throat widths and lower resistance. The preferential flow paths of CO2 correspond to high flow rates and high pore pressures occupied by CO2. As the injection rate increases, the CO2 filtration rate increases, CO2 movement becomes more pronounced, and CO2 saturation rises. Beyond the optimal flow rate, however, the displacement effect worsens. The wettability of the porous medium predominantly determines the CO2 migration path during the displacement process. As the contact angle increases, CO2 wettability towards the rock improves, significantly enhancing the displacement effect. Under different interfacial tension conditions, the recovery rate increases with the amount of CO2 entering the porous medium, but no clear correlation is observed between interfacial tension and the recovery rate. Therefore, it is challenging to further improve the recovery rate by altering interfacial tension. The viscosity ratio affects wettability and thereby influences the displacement effect. Lower viscosity ratios result in reduced wettability effects, making CO2 diffusion more difficult. This study provides theoretical guidance and technical support for CO2-EOR (Enhanced Oil Recovery) in highly heterogeneous reservoirs on a field scale.
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基于相场法的气油两相流孔隙尺度建模--中国古仑特岩储层案例研究
本研究采用相场法结合逼真的微观异质孔隙结构模型,对二氧化碳-油两相流进行了数值模拟。研究了置换过程中二氧化碳的扩散行为,分析了流速、接触角和界面张力等参数对置换效果的影响。结果表明,随着时间的推移,饱和油逐渐被二氧化碳取代,而二氧化碳主要沿着喉部宽度较大、阻力较小的通道流动。二氧化碳的优先流动路径与高流速和二氧化碳占据的高孔隙压力相对应。随着注入率的增加,二氧化碳的过滤率也会增加,二氧化碳的流动会变得更加明显,二氧化碳的饱和度也会上升。然而,超过最佳流速后,置换效应会恶化。在置换过程中,多孔介质的润湿性主要决定了二氧化碳的迁移路径。随着接触角的增大,二氧化碳对岩石的润湿性增强,从而显著提高了置换效果。在不同的界面张力条件下,回收率随着进入多孔介质的二氧化碳量的增加而增加,但界面张力与回收率之间没有明显的相关性。因此,通过改变界面张力来进一步提高回收率具有挑战性。粘度比会影响润湿性,从而影响置换效应。粘度比越低,润湿效果越差,二氧化碳的扩散就越困难。这项研究为在油田规模的高度异质储层中进行 CO2-EOR(提高石油采收率)提供了理论指导和技术支持。
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来源期刊
Processes
Processes Chemical Engineering-Bioengineering
CiteScore
5.10
自引率
11.40%
发文量
2239
审稿时长
14.11 days
期刊介绍: Processes (ISSN 2227-9717) provides an advanced forum for process related research in chemistry, biology and allied engineering fields. The journal publishes regular research papers, communications, letters, short notes and reviews. Our aim is to encourage researchers to publish their experimental, theoretical and computational results in as much detail as necessary. There is no restriction on paper length or number of figures and tables.
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