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dc.contributor.authorLiu, Bing
dc.contributor.authorWang, Chao
dc.contributor.authorZhang, Jun
dc.contributor.authorXiao, Senbo
dc.contributor.authorZhang, Zhiliang
dc.contributor.authorShen, Yue
dc.contributor.authorsun, baojiang
dc.contributor.authorHe, Jianying
dc.date.accessioned2019-05-06T12:39:25Z
dc.date.available2019-05-06T12:39:25Z
dc.date.created2016-12-22T22:04:08Z
dc.date.issued2017
dc.identifier.citationEnergy & Fuels. 2017, 31 (1), 738-746.nb_NO
dc.identifier.issn0887-0624
dc.identifier.urihttp://hdl.handle.net/11250/2596628
dc.description.abstractSupercritical CO2 (scCO2), as an effective displacing agent and clean fracturing fluid, exhibits a great potential in enhanced oil recovery (EOR) from unconventional reservoirs. However, the microscopic translocation behavior of oil in shale shale inorganic nanopores, has not been well understood yet in the scCO2 displacement process. Herein, non-equilibrium molecular dynamics (NEMD) simulations were performed to study adsorption and translocation of scCO2/dodecane in shale inorganic nanopores at different scCO2 injection rates. The injected scCO2 preferentially adsorb in proximity of the surface and form layering structures due to hydrogen bonds interactions between CO2 and -OH groups. A part of scCO2 molecules in the adsorption layer retain the mobility, due to the cooperation of slippage, Knudsen diffusion, and imbibition of scCO2. The adsorbed dodecane are separated partly from the surface by scCO2, as a result the competitive adsorption between scCO2 and dodecane, and thus enhancing the mobility of oil and improving oil production. In the scCO2 displacement front, interfacial tension (IFT) reduction and dodecane swelling enhance the mobilization of dodecane molecules, which plays the crucial role in the CO2 EOR process. The downstream dodecane, adjacent to the displacement front, are found to aggregate and pack tightly. The analysis of contact angle, meniscus and interfacial width shows that the small scCO2 injection rate with a large injection volume is favorable for CO2 EOR. The morphology of meniscus changes in the order convex-concave-CO2 entrainment with the increase of the injection rate. The microscopic insight provided in this study is helpful to understand and effectively design CO2 exploitation of shale resources.nb_NO
dc.language.isoengnb_NO
dc.publisherAmerican Chemical Societynb_NO
dc.titleDisplacement mechanism of oil in shale inorganic nanopores by supercritical carbon dioxide from molecular dynamics simulationsnb_NO
dc.title.alternativeDisplacement mechanism of oil in shale inorganic nanopores by supercritical carbon dioxide from molecular dynamics simulationsnb_NO
dc.typeJournal articlenb_NO
dc.typePeer reviewednb_NO
dc.description.versionpublishedVersionnb_NO
dc.source.pagenumber738-746nb_NO
dc.source.volume31nb_NO
dc.source.journalEnergy & Fuelsnb_NO
dc.source.issue1nb_NO
dc.identifier.doi10.1021/acs.energyfuels.6b02377
dc.identifier.cristin1417025
dc.relation.projectNorges forskningsråd: 234626nb_NO
dc.description.localcodeThis article will not be available due to copyright restrictions (c) 2017 by American Chemical Societynb_NO
cristin.unitcode194,64,45,0
cristin.unitnameInstitutt for konstruksjonsteknikk
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode2


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