Journal of Petroleum Science & Engineering2022,Vol.21013.DOI:10.1016/j.petrol.2021.110008

Pore-scale characterization of CO2 front progress through a porous medium using a free energy model based on Phase-Field Lattice Boltzmann Method

Moradi, Bijan Moghadam, Amir Hosseini Rasaei, Mohammad Reza Papi, Ali
Journal of Petroleum Science & Engineering2022,Vol.21013.DOI:10.1016/j.petrol.2021.110008

Pore-scale characterization of CO2 front progress through a porous medium using a free energy model based on Phase-Field Lattice Boltzmann Method

Moradi, Bijan 1Moghadam, Amir Hosseini 2Rasaei, Mohammad Reza 1Papi, Ali3
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作者信息

  • 1. Univ Tehran
  • 2. Azmoon Novin Alyaf Co Knowledge Enterprise Ltd
  • 3. Imperial Coll London
  • 折叠

Abstract

Pore-scale simulation of CO2 front progression through a porous medium has been investigated by a free energy model based on phase-field lattice Boltzmann method. Visualization of the fluids distribution in the breakthrough time reveals a strong dependence of front pattern on viscous and capillary forces interaction. Therefore, the dominance of each force imposes a different front pattern on the system. According to the percolation theory, increasing the capillary number reduces the invading fluid saturation and, consequently, the sweep efficiency, because the viscous fingering regime will intensify. However, a uniform pattern is observed when the mobility ratio is high, whereas the front evolution is facilitated in the opposite case. Impressive results have also been obtained regarding the wetting conditions. Since an upward trend in the displacement efficiency from strong drainage to strong imbibition processes is expected, this trend has changed due to the capillary suction effects in the strong imbibition process. According to experimental studies, the viscous fingering phenomenon will be proportional to the capillary suction. Furthermore, new areas have also been introduced to predict the displacement regimes.

Key words

Pore scale/Porous media/Viscous fingering/Capillary fingering/Digital rock analysis/Lattice Boltzmann method/RELATIVE PERMEABILITY/2-PHASE FLOW/LIQUID CO2/IMMISCIBLE DISPLACEMENT/CAPILLARY-PRESSURE/INVASION PERCOLATION/INTERFACIAL-TENSION/MULTIPHASE FLOWS/SALINE AQUIFERS/FLUID INVASION

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出版年

2022
Journal of Petroleum Science & Engineering

Journal of Petroleum Science & Engineering

ISSN:0920-4105
被引量5
参考文献量79
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