English

Single condensation droplet self-ejection from divergent structures with uniform wettability

Fluid Dynamics 2023-07-03 v1 Mesoscale and Nanoscale Physics

Abstract

Coalescence-jumping of condensation droplets is widely studied for anti-icing, condensation heat transfer, water harvesting and self-cleaning. Another phenomenon that is arousing interest for potential enhancements is the individual droplet self-ejection. However, whether it is possible from divergent structures without detachment from pinning sites remains unexplored. Here we investigate the self-ejection of individual droplets from divergent, uniformly hydrophobic structures. We designed, fabricated and tested arrays of nanostructured truncated microcones arranged in a square pattern. The dynamics of the single condensation droplet is revealed with high speed microscopy: it self-ejects after cycles of growth and self-propulsion between four cones. Adopting the conical pore for simplicity, we modelled the slow iso-pressure growth phases and the surface energy release-driven rapid transients enabled once a dynamic configuration is reached. In addition to easier fabrication, microcones with uniform wettability have the potential to allow self-ejection of almost all the droplets with a precise size while maintaining mechanical resistance and thus promising great improvements in a plethora of applications.

Keywords

Cite

@article{arxiv.2306.17635,
  title  = {Single condensation droplet self-ejection from divergent structures with uniform wettability},
  author = {Nicolo' G. Di Novo and Alvise Bagolini and Nicola M. Pugno},
  journal= {arXiv preprint arXiv:2306.17635},
  year   = {2023}
}
R2 v1 2026-06-28T11:18:57.052Z