4.6 Article

Investigations on Water Imbibing into Oil-Saturated Nanoporous Media: Coupling Molecular Interactions, the Dynamic Contact Angle, and the Entrance Effect

期刊

INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH
卷 60, 期 4, 页码 1872-1883

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.iecr.0c05118

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资金

  1. National Natural Science Foundation of China [51804328, 51674279]
  2. National Science and Technology Major Project of China [ZD2019-183-007]
  3. Shandong Province Natural Science Foundation [ZR2018BEE008, ZR2018BEE018]
  4. Fundamental Research Funds for the Central Universities [18CX02168A]
  5. Graduate Innovative Engineering project [YCX2020023]

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This study establishes a new generalized imbibition model in inorganic nanopores and porous media through theoretical analysis and a nanoscale Shan-Chen lattice Boltzmann method (LBM). The effects of pore dimensions and shapes in porous media, nanoscale effects, dynamic contact angle, and entrance effect are considered and discussed. The proposed model accurately characterizes the oil/water imbibition mechanisms and is adaptable to different nanoscale effects.
Spontaneous imbibition of hydraulic fracturing fluids into the water-wet inorganic media is a ubiquitous phenomenon, which has an important influence on tight/shale oil recovery and groundwater contamination. However, in nanoscale space, the fluid-solid (water-wall and oil-wall) molecular interactions, which can result in the nanoscale effects of the slip boundary and the varying interfacial fluid viscosity, will make the fluid flow behaviors be more complex and difficult to characterize. In this work, a new generalized imbibition model in inorganic nanopores and porous media is established by the theoretical analysis and a nanoscale Shan-Chen lattice Boltzmann method (LBM). The effects of pore dimensions and shapes in porous media, the nanoscale effects, the dynamic contact angle, and the entrance effect are considered and discussed. The results show that the proposed model can accurately characterize the oil/water imbibition mechanisms and be adapted to different nanoscale effects. Based on discussions, this study can provide microscopic basics of water imbibing into nanopores and provide guiding information and theoretical model for the oil recovery from tight/shale reservoirs by hydraulic fracturing, the groundwater remediation by restricting imbibition rate, and other relevant applications.

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