中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Effect mechanism of wettability on CO2 replacement brine in nanopores

文献类型:期刊论文

作者Yu, Tao1,3; Li, Qi1,2,3; Tan, Yongsheng1,3; Chen, Bowen1,3; Hu, Haixiang1,3
刊名JOURNAL OF HYDROLOGY
出版日期2023-10-01
卷号625页码:18
关键词Saline aquifer Wettability Replacement front Molecular dynamics simulation
ISSN号0022-1694
DOI10.1016/j.jhydrol.2023.130165
英文摘要The mechanism of using CO2 to replace brine in nanopores is still unclear, and the influence of the wettability of pore walls on the interfacial effect needs to be improved. In this study, the effect of wettability in tight sandstone reservoirs on CO2 replacement brine in nanopores was probed through molecular dynamics simulations. The results showed that the replacement front of CO2 molecules was meniscus shaped in hydrophilic and amphipathic systems, while it advanced as a whole in lipophilic systems. When CO2 replaced brine in nanopores, the interaction energies of the H2O and CO2 molecules near the pore walls with the pore walls were much greater than those of molecules in the centers of the pore channels & sdot;H2O molecules had strong interactions with the hydroxyl groups on the pore walls but weak interactions with the methyl groups on the pore walls, while CO2 molecules had strong interactions with both hydroxyl and methyl groups. Water films were always present on the hydrophilic pore walls to separate CO2 molecules from the pore walls, while the H2O molecules could be basically replaced in the lipophilic pore channels. CO2 molecules could easily strip the H2O molecules around the hydrophobic groups on the amphipathic pore walls, but they could not replace the H2O molecules around the hydrophilic groups on the amphipathic pore walls. During the process of CO2 replacement brine in nanopores, the interaction energies of the H2O molecules with pore walls dominated in hydrophilic and amphipathic systems, which were much greater than the energies of the CO2 molecules with H2O molecules and the CO2 molecules with pore walls. However, in the lipophilic system, the difference in interaction energy between different components was less. The results of this research could serve as a reference for understanding the mechanism of CO2 storage in tight sandstone reservoirs.
资助项目National Key R & D Program of China[2022YFE0115800] ; National Natural Science Foundation of China[41872210] ; National Natural Science Foundation of China[41274111]
WOS研究方向Engineering ; Geology ; Water Resources
语种英语
WOS记录号WOS:001123926100001
出版者ELSEVIER
源URL[http://119.78.100.198/handle/2S6PX9GI/40109]  
专题中科院武汉岩土力学所
通讯作者Li, Qi
作者单位1.Chinese Acad Sci, Inst Rock & Soil Mech, State Key Lab Geomech & Geotech Engn, Wuhan 430071, Peoples R China
2.Xiaohongshan 2, Wuhan 430071, Peoples R China
3.Univ Chinese Acad Sci, Beijing 100049, Peoples R China
推荐引用方式
GB/T 7714
Yu, Tao,Li, Qi,Tan, Yongsheng,et al. Effect mechanism of wettability on CO2 replacement brine in nanopores[J]. JOURNAL OF HYDROLOGY,2023,625:18.
APA Yu, Tao,Li, Qi,Tan, Yongsheng,Chen, Bowen,&Hu, Haixiang.(2023).Effect mechanism of wettability on CO2 replacement brine in nanopores.JOURNAL OF HYDROLOGY,625,18.
MLA Yu, Tao,et al."Effect mechanism of wettability on CO2 replacement brine in nanopores".JOURNAL OF HYDROLOGY 625(2023):18.

入库方式: OAI收割

来源:武汉岩土力学研究所

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