Supercritical CO2 phase transition and permeability variation characteristic under coupling effect of temperature and confining stress
YAO Hongbo
LIANG Weiguo
WEI Jie
Abstract:In the process of CO2 sequestration in deep coal seam,the pressure of injected supercritical CO2 gradually de-creases with the increase of migration distance,and it turns into gaseous state.This kind of CO2 with phase change in coal is called mixed-phase CO2.The pressure distribution characteristics and permeability of mixed-phase CO2 in coal are im-portant factors affecting the sealing effect.The traditional gas permeability is based on the assumption of linear distribu-tion of gas pressure.However,the physical properties of CO2 in complex phase state are complicated,and the assumption of linear distribution of pore pressure may no longer be applicable.In this paper,the pressure evolution characteristics of mixed-phase CO2 were studied on ø100 mm×200 mm anthracite raw coal sample at different temperatures(40,55,70,85℃)and confining pressures(25,35,45 MPa).The results showed as follows:①the mixed-phase CO2 pressure in coal showed a nonlinear decreasing trend of first slow and then sharp.The actual average pore pressure is about 0.6-0.7 times of the injection pressure.②The difference between the permeability of mixed-phase CO2 calculated based on the modi-fied average pore pressure and that calculated by the traditional Darcy's law gradually decreases to below 20%with the in-crease of confining pressure and temperature.③Under the comprehensive influence of coal thermal expansion,CO2 de-sorption and viscosity,the mixed-phase CO2 permeability decreases first and then increases with temperature.④When su-percritical CO2 is injected,with the decrease of pore pressure,the internal permeability changes in a U shape,and the min-imum value appears in the CO2 phase transition zone.The permeability of gaseous CO2 decreases with the increase of pore pressure,while the permeability of supercritical CO2 increases with the increase of pore pressure,which is the result of ad-sorption expansion and effective stress.
Keywords:mixed-phase CO2pressure evolutionpressure gradientmean pore pressureCO2 phase transition
Publication Date:2025-07-31
Online Publishing Date:2025-08-22(First online date of this platform, not the publication date of the document)
Pages:13( 3566-3578 )
Journal of China Coal Society

Journal of China Coal Society

ISTICPKUEICSCD
ISSN:0253-9993
Year, Vol.(Issue):2025,50(7)