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Updated: Jan 1, 2026

Scalable Stamp Printing and Fabrication of Hemiwicking Surfaces
Published on: December 18, 2018
A simple analytic model for predicting the wicking velocity in micropillar arrays
Siva Rama Krishnan1, John Bal2, Shawn A Putnam2
1Department of Mechanical and Aerospace Engineering, University of Central Florida, Orlando, FL, 32826, USA. sr_krishnan@knights.ucf.edu.
Abstract:
Hemiwicking is the phenomena where a liquid wets a textured surface beyond its intrinsic wetting length due to capillary action and imbibition. In this work, we derive a simple analytical model for hemiwicking in micropillar arrays. The model is based on the combined effects of capillary action dictated by interfacial and intermolecular pressures gradients within the curved liquid meniscus and fluid drag from the pillars at ultra-low Reynolds numbers [Formula: see text]. Fluid drag is conceptualized via a critical Reynolds number: [Formula: see text], where v0 corresponds to the maximum wetting speed on a flat, dry surface and x0 is the extension length of the liquid meniscus that drives the bulk fluid toward the adsorbed thin-film region. The model is validated with wicking experiments on different hemiwicking surfaces in conjunction with v0 and x0 measurements using Water [Formula: see text], viscous FC-70 [Formula: see text] and lower viscosity Ethanol [Formula: see text].
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