Export citation

Export citation

Choose format for download:

Download Citation

    Controlling capillary fingering morphology in patterned porous media

    Saideep Pavuluri1, Thomas Daniel Seers2,3, Ali Saeibehrouzi4,5, Ran Holtzman4,6, Soroush Abolfathi5, Petr Denissenko5, and Harris Sajjad Rabbani1,*

    • 1College of Science and Engineering, Hamad Bin Khalifa University, Education City, Doha, P.O. Box 23874, Qatar
    • 2Petroleum Engineering Program, Texas A&M University at Qatar, Education City, Doha, P.O. Box 23874, Qatar
    • 3Digital Transformation Group, Saudi Aramco, Dhahran 31311, Kingdom of Saudi Arabia
    • 4Fluid and Complex Systems Research Centre, Coventry University, Coventry CV1 2NL, United Kingdom
    • 5School of Engineering, University of Warwick, Coventry CV4 7AL, United Kingdom
    • 6Institute of Environmental Assessment and Water Research (IDAEA), Spanish National Research Council (CSIC), Barcelona 08034, Spain

    • *Contact author: hrabbani@hbku.edu.qa

    Phys. Rev. Fluids 11, 034001 – Published 26 March, 2026

    DOI: https://doi.org/10.1103/j3lw-9875

    Abstract

    We present a methodology to modulate immiscible fluid-fluid invasion patterns in patterned porous media during drainage in the capillary fingering flow regime. A 2D patterned porous medium is generated by a sequential deposition algorithm of disks/grains of two distinct size ranges (dual-porosity media). To attain patterned porous media, selected regions are packed with small grains, elsewhere packed with larger grains. By tuning the ratio of viscous to capillary forces, as defined by the capillary number (Ca), we control the degree to which the underlying microstructure affects the invasion morphology in the patterned porous medium. A decrease in Ca amplifies the influence of the underlying pore structure, resulting in a more pronounced alignment of the flow pattern with the porous medium's geometry. For these “structured” flows, the drainage within zones packed with smaller grains (having relatively smaller pores) is less than 10%. In contrast, an increase in Ca promotes more “random” displacement patterns with significant invasion in fine (more than 10%) and coarse pores. The possibility to modulate multiphase flows using patterned porous media can have practical implications in engineered membrane designs for fuel cells, selective transport, and filtering applications.

    Physics Subject Headings (PhySH)

    Authorization Required

    We need you to provide your credentials before accessing this content.

    Supplemental Material (Subscription Required)

    References (Subscription Required)

    Outline

    Information

    Sign In to Your Journals Account

    Filter

    Filter

    Article Lookup

    Enter a citation