We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for droplets suspended on a superhydrophobic surface. The scaling laws deriving from the theory are tested.

Peters, A., Pirat, C., Sbragaglia, M., Borkent, B., Wessling, M., Lohse, D., et al. (2009). Cassie-Baxter to Wenzel state wetting transition: Scaling of the front velocity. THE EUROPEAN PHYSICAL JOURNAL. E, SOFT MATTER, 29, 391-397 [10.1140/epje/i2009-10489-3].

Cassie-Baxter to Wenzel state wetting transition: Scaling of the front velocity

SBRAGAGLIA, MAURO;
2009-01-01

Abstract

We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for droplets suspended on a superhydrophobic surface. The scaling laws deriving from the theory are tested.
2009
Pubblicato
Rilevanza internazionale
Articolo
Sì, ma tipo non specificato
Settore FIS/02 - FISICA TEORICA, MODELLI E METODI MATEMATICI
English
Con Impact Factor ISI
Front velocity; Gap size; Material property; Micropatterned; Pattern geometry; Polymer surfaces; Single curves; Square lattices; Superhydrophobic; Surface forces; Viscous dissipation; Wenzel state; Wetting fronts; Wetting transitions; Hydrophobicity; Photoresists; Plants (botany); Velocity; Wetting; Surfaces
Peters, A., Pirat, C., Sbragaglia, M., Borkent, B., Wessling, M., Lohse, D., et al. (2009). Cassie-Baxter to Wenzel state wetting transition: Scaling of the front velocity. THE EUROPEAN PHYSICAL JOURNAL. E, SOFT MATTER, 29, 391-397 [10.1140/epje/i2009-10489-3].
Peters, A; Pirat, C; Sbragaglia, M; Borkent, B; Wessling, M; Lohse, D; Lammertink, R
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/26194
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