中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Dynamic simulation of immiscible displacement in fractured porous media

文献类型:期刊论文

作者Qiu, Xin1,2; Lin, Mian1,2; Cao, Gaohui1,2; Jiang, Wenbin1,2; Ji, Lili1,2; Lin M(林缅); Jiang WB(江文滨); Jiang WB(江文滨); Ji LL(姬莉莉); Cao GH(曹高辉)
刊名PHYSICS OF FLUIDS
出版日期2024-05-01
卷号36期号:5页码:15
ISSN号1070-6631
DOI10.1063/5.0204490
通讯作者Lin, Mian(linmian@imech.ac.cn)
英文摘要Investigating immiscible displacement in fractured porous media is essential for understanding the two-phase flow behavior within pores and fractures. In this work, a three-dimensional pore-fracture network model was developed to address the influence of fracture on flow patterns and to characterize fracture-matrix crossflow under different flow conditions. Sensitivity studies at a wide range of viscosity ratios and capillary numbers underscored that fracture significantly influenced flow patterns in the capillary fingering zone. Fracture with an advantageous path effect in the displacement direction caused a shift in the boundary of capillary fingering zone toward an increase in capillary numbers. As fracture aperture decreased and aspect ratio increased, there was a discernible decline in the crossflow rate. When fracture aperture equaled average matrix throat diameter, fracture lose advantageous path effect in compact displacement zone but retained it in viscous fingering and capillary fingering zones. Distinct matrix-fracture crossflow development processes were observed in different zones: in cross zone, following displacement breakthrough, the crossflow underwent a "long-term" process to attain stability. Viscous fingering zone promptly achieved stability post-breakthrough, whereas both capillary fingering and compact displacement zones had already reached a stable state before breakthrough. Nonlinear variations in breakthrough saturation were observed in the cross zone between compact displacement and capillary fingering zones. The control process of immiscible displacement exhibited variability under different flow conditions: compact displacement zone was characterized by matrix dominance, viscous fingering zone was jointly controlled by matrix displacement and fracture-matrix crossflow, and capillary fingering zone was primarily governed by fracture-matrix crossflow. These findings enhance scholarly comprehension of immiscible displacement behavior in fractured porous media.
WOS关键词MODELING 2-PHASE FLOW ; PORE-SCALE ; NUMERICAL-SIMULATION ; CAPILLARY ; FLUID ; VOLUME ; WETTABILITY ; POROSITY ; FORCES
资助项目National Natural Science Foundation of China10.13039/501100001809[41690132] ; National Natural Science Foundation of China10.13039/501100001809[41872163] ; National Natural Science Foundation of China[XDA14010304] ; Strategic Priority Research Program of the Chinese Academy of Sciences
WOS研究方向Mechanics ; Physics
语种英语
WOS记录号WOS:001215875200006
资助机构National Natural Science Foundation of China10.13039/501100001809 ; National Natural Science Foundation of China ; Strategic Priority Research Program of the Chinese Academy of Sciences
源URL[http://dspace.imech.ac.cn/handle/311007/95492]  
专题力学研究所_流固耦合系统力学重点实验室(2012-)
通讯作者Lin, Mian
作者单位1.Univ Chinese Acad Sci, Sch Engn Sci, Beijing 100049, Peoples R China
2.Inst Mech, Chinese Acad Sci, Beijing 100190, Peoples R China
推荐引用方式
GB/T 7714
Qiu, Xin,Lin, Mian,Cao, Gaohui,et al. Dynamic simulation of immiscible displacement in fractured porous media[J]. PHYSICS OF FLUIDS,2024,36(5):15.
APA Qiu, Xin.,Lin, Mian.,Cao, Gaohui.,Jiang, Wenbin.,Ji, Lili.,...&邱鑫.(2024).Dynamic simulation of immiscible displacement in fractured porous media.PHYSICS OF FLUIDS,36(5),15.
MLA Qiu, Xin,et al."Dynamic simulation of immiscible displacement in fractured porous media".PHYSICS OF FLUIDS 36.5(2024):15.

入库方式: OAI收割

来源:力学研究所

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