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March 12, 2026Journal of Fluid Mechanics0 citationsOpen Access

Spreading versus non-spreading of wetting films: enhancing aqueous phase invasion in disordered media via nanoparticle adsorption

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XLXukang LuMZMingbao ZhangWLWenhai Lei

Key Points

  • The aim is to understand how nanoparticles influence fluid flow dynamics by modifying wettability in disordered media.
  • Combined interfacial-scale wetting models with pore-scale microfluidic experiments
  • Conducted displacement experiments under varying intrinsic wettability
  • Validated findings across designed porous structures of different hierarchies
  • Nanoparticle adsorption only affects displacement when wetting films spread in corner-flow conditions
  • Moderately water-wet surfaces enhance displacement efficiency due to film flow development
  • Diminished displacement efficiency observed in less hierarchical structures

Abstract

Controlling multiphase flow in disordered media is central to diverse practical contexts. Although nanoparticles have been widely utilised to modify surface wettability, factors governing their effects on dynamic displacement patterns remain unclear. Here, we identify the criterion for nanoparticle-induced wettability alteration during displacement by combining interfacial-scale wetting models, pore-scale microfluidic experiments and simulations. Motivated by striking contrasts in static wettability, we find that nanoparticle adsorption on solid surfaces affects displacement interfaces only when spreading of wetting films is pre-established, corresponding to corner-flow conditions. Displacement experiments under varying intrinsic wettability show that wetting-film development and non-aqueous droplet detachment are strengthened exclusively on moderately water-wet surfaces satisfying the corner-flow criterion. Investigations across designed porous structures with varying degrees of structural hierarchy validate the generality of the wettability criterion, while improvement in displacement efficiency diminishes with reduced hierarchy. The structural effect arises from variations in flow heterogeneity, with stronger heterogeneity simultaneously promoting film flow and ganglion mobilisation. The coupled impacts of wettability and structural conditions are summarised in an illustrative phase diagram delineating nanoparticle-tuned multiphase displacement. Our findings offer mechanistic insights into complex fluid flow in porous media and suggest optimised strategies for displacement control via nanoparticle suspensions.

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Cite This Study

Lu et al. (2026) studied this question.

synapsesocial.com/papers/69b2584996eeacc4fcec7ce1https://doi.org/10.1017/jfm.2026.11308
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