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作 者:Hisham Ben Mahmud Walid Mohamed Mahmud Ali Al-Rubaye
机构地区:[1]Petroleum Engineering Department,Curtin University Malaysia,CDT 250,Miri,98009,Malaysia [2]Department of Petroleum Engineering,University of Tripoli,Tripoli,Libya [3]Gudea Geoscience Group(GGSG),Thi Qar,Iraq
出 处:《Energy Geoscience》2021年第4期337-344,共8页能源地球科学(英文)
摘 要:Carbon dioxide(CO_(2))capture and sequestration through CO_(2)enhanced oil recovery(EOR)in oil reservoirs is one of the approaches considered to reduce CO_(2)emission into the atmosphere.The injection of CO_(2)into a subsurface geological formation may lead to chemical reactions that may affect the formation pore structure and characteristics.In this study,the effect of CO_(2)ebrineerock interaction on the rock petrophysical properties and mineral volume fraction was numerically investigated during CO_(2)injection into a chalk reservoir rock.A 3D numerical modeling and simulation were conducted using COMSOL®Multiphysics commercial software of computational fluid dynamics(CFD)to simulate CO_(2)ebrine core flooding process in a chalk core.The model was validated against a coreescale experimental data from literature.Simulation differential pressure data matched the literature experimental data closely and consistently indicating good agreement between them.Temperature effect on the performance of CO_(2)ebrineechalk sequestration was also evaluated in the present study.Results indicated that porosity was only slightly affected by temperature increase during CO_(2)injection in contrast to permeability that was substantially affected by temperature.Moreover,chemical reactions enhanced as temperature increased leading to significant increase in permeability.Thus,carbonated brine sequestration excelled at elevated temperature due to increased acidity which governs the sequestration process.The developed model maybe considered as a reliable tool to optimize various operating parameters of CO_(2)ebrine sequestration.
关 键 词:CO_(2)ebrine injection Petrophysical properties Mineral volume fraction COMSOL Multiphysics software Temperature effect on chalk rock
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