Han Wang, Jianchao Cai, Yuliang Su, Zhehui Jin, Wendong Wang, Guanqun Li
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Then, the spontaneous imbibition behaviors in nanoporous media based on the pore scale microsimulation parameters obtained from the molecular simulation velocity results were simulated, and the effects of water saturations on imbibition behaviors were discussed. The results show that as the water saturation increases from 0 to 0.1, the imbibition mass in nanoporous media increases because of the oil-water interfacial slip and a completely hydrophilic wall. As water saturation continues to increase, the imbibition mass decreases gradually because the existence of water bridges impedes the water imbibition. Document Type: Original article Cited as: Wang, H., Cai, J., Su, Y., Jin, Z., Wang, W., Li, G. Imbibition behaviors in shale nanoporous media from pore-scale perspectives. 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引用次数: 0
摘要
在页岩储层中,自吸是压裂液漏失的重要机制,对提高采收率和水资源需求具有重要影响。然而,由于边界滑移、油水界面滑移和分子间相互作用引起的非均质流体性质的纳米效应,自发吸胀行为的表征和澄清更加复杂。采用纳米尺度多松弛时间、多组分、多相晶格玻尔兹曼方法研究了含油饱和纳米空间的吸水性。研究了孔径、液面滑移、水膜、油水界面滑移、水桥和孔结构对单孔吸胀行为的影响。然后,基于分子模拟速度结果获得的孔尺度微模拟参数,对纳米多孔介质中的自吸行为进行了模拟,并讨论了含水饱和度对自吸行为的影响。结果表明:当含水饱和度从0增加到0.1时,由于油水界面的滑移和完全亲水壁的形成,纳米孔介质中的吸积质量增加;随着含水饱和度的不断增加,由于水桥的存在阻碍了吸积,吸积质量逐渐减小。文档类型:原始文章认为:王,H, Cai, J。,苏,Y,, Z, Wang W。,g .自吸行为在于页岩纳米多孔介质的观点。毛细管学,2023,9(2):32-44。https://doi.org/10.46690/capi.2023.11.02
Imbibition behaviors in shale nanoporous media from pore-scale perspectives
In shale reservoirs, spontaneous imbibition is an important mechanism of fracturing fluid loss, which has an important impact on enhanced oil recovery and water resource demand. However, spontaneous imbibition behaviors are more complicated to characterize and clarify due to the nanoscale effects of the boundary slip, oil-water interfacial slip, and heterogeneous fluid properties caused by intermolecular interactions. A nanoscale multi-relaxation-time multicomponent and multiphase lattice Boltzmann method was applied to investigate the water imbibition into oil-saturated nanoscale space. The effects of pore size, fluid-surface slip, water film, oil-water interfacial slip, water bridge, and pore structures on the imbibition behaviors in a single nanopore were investigated. Then, the spontaneous imbibition behaviors in nanoporous media based on the pore scale microsimulation parameters obtained from the molecular simulation velocity results were simulated, and the effects of water saturations on imbibition behaviors were discussed. The results show that as the water saturation increases from 0 to 0.1, the imbibition mass in nanoporous media increases because of the oil-water interfacial slip and a completely hydrophilic wall. As water saturation continues to increase, the imbibition mass decreases gradually because the existence of water bridges impedes the water imbibition. Document Type: Original article Cited as: Wang, H., Cai, J., Su, Y., Jin, Z., Wang, W., Li, G. Imbibition behaviors in shale nanoporous media from pore-scale perspectives. Capillarity, 2023, 9(2): 32-44. https://doi.org/10.46690/capi.2023.11.02
CapillarityPhysics and Astronomy-Surfaces and Interfaces
CiteScore
7.10
自引率
0.00%
发文量
15
审稿时长
2~3 weeks
期刊介绍:
Capillarity publishes high-quality original research articles and current reviews on fundamental scientific principles and innovations of capillarity in physics, chemistry, biology, environmental science and related emerging fields. All advances in theoretical, numerical and experimental approaches to capillarity in capillary tube and interface dominated structure and system area are welcome.
The following topics are within (but not limited to) the scope of capillarity:
i) Capillary-driven phenomenon in natural/artificial tubes, porous and nanoporous materials
ii) Fundamental mechanisms of capillarity aided by theory and experiments
iii) Spontaneous imbibition, adsorption, wicking and related applications of capillarity in hydrocarbon production, chemical process and biological sciences
iv) Static and dynamic interfacial processes, surfactants, wettability, film and colloids
v) New approaches and technologies on capillarity
Capillarity is a quarterly open access journal and free to read for all. The journal provides a communicate platform for researchers who are interested in all fields of capillary phenomenon.