ArticleIndustrial & engineering chemistry research2026
Experimental Quantification of the Electro-Osmotic Flow Field in an Irregular Porous Medium and Its Consequences for Dewatering.
Article in Industrial & engineering chemistry research, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Authors and funding
4 authors.
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Abstract
The development of dewatering methods driven by electric fields offers significant potential to reduce the energy demand for these processes. Electro-osmotic dewatering relies on the application of an electric field across a porous matrix possessing a surface charge, inducing liquid transport through electrokinetic mechanisms. While the feasibility and energy efficiency of electro-osmotic dewatering have been demonstrated, a fundamental understanding of how the irregular, porous microstructure affects the uniformity of dewatering is lacking. In this work, we investigate electro-osmotic flow in porous media micromodels and directly compare it with conventional pressure-driven flow under controlled experimental conditions. The micromodel is designed and microfabricated to exhibit a controlled, heterogeneous microstructure. Pore-scale velocity fields are measured by using particle tracking velocimetry and characterized through velocity probability density functions. A multiphysics model, coupling ion transport, electrostatics, and hydrodynamics, is validated against the experiments. The results show that, in contrast to pressure-driven flow, which exhibits broader velocity distributions with preferential flow paths and stagnant regions, electro-osmotic flow produces a narrower velocity distribution, even in heterogeneous porous structures. These findings demonstrate the potential of electro-osmotic dewatering to achieve more uniform water removal in low-permeability materials and provide a predictive framework for optimizing electrically driven dewatering.
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