Abstract
Abstract
Preferential flow governs fluid and solute transport across scales from micropores to regional watersheds, yet it is commonly attributed to static pore-structure heterogeneity. Here, we show that fluid polarity can actively reorganize pore networks and amplify preferential flow in kaolinite-rich clay media. In permeation experiments, replacing water with a low-polar hydrofluoroether triggers early breakthrough (~0.4 d) and permeability up to ~62.7× higher than predicted by standard relative permeability functions at only 18.8% low-polar saturation. Multiscale imaging and porosimetry show a transition from unimodal microporosity to connected pore-fracture bimodal architectures. Interfacial measurements indicate that low-polar fluids weaken interparticle electrostatic repulsion and thereby reorganize pore space by reducing ineffective pores and activating latent connectivity. Guided by the cross-scale mechanistic chain, we establish a one-parameter relationship linking interfacial forces to ineffective porosity and integrate it into a coupled framework that reproduces preferential path development and permeability evolution across 21 clay-rich media and 24 fluids. These findings advance a cross-scale framework for polarity-driven transport dynamics and provide a basis for incorporating fluid polarity into predictive subsurface transport models in shallow clay-rich environments.
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@article{Zhang2026Fluid,
title = {Fluid polarity shifts initiate and amplify preferential flow in clay-rich media},
author = {Xiaolei Zhang and Peihao Ouyang and Shijin Feng and He Chen and Qi-Teng Zheng},
journal = {Proceedings of the National Academy of Sciences},
year = {2026},
doi = {10.1073/pnas.2536672123},
url = {https://doi.org/10.1073/pnas.2536672123}
}
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