DocumentCode
521563
Title
Dynamic wetting on superhydrophobic surfaces: Droplet impact and wetting hysteresis
Author
Smyth, Katherine ; Paxon, Adam ; Kwon, Hyuk-Min ; Deng, Tao ; Varanasi, Kripa K.
Author_Institution
Dept. of Mech. Eng., Massachusetts Inst. of Technol., Cambridge, MA, USA
fYear
2010
fDate
2-5 June 2010
Firstpage
1
Lastpage
8
Abstract
We study the wetting energetics and wetting hysteresis of sessile and impacting water droplets on superhydrophobic surfaces as a function of surface texture and surface energy. For sessile drops, we find three wetting regimes on these surfaces: equilibrium Cassie at small feature spacing, equilibrium Wenzel at large feature spacing, and an intermediate state at medium feature spacing. We observe minimum wetting hysteresis not on surfaces that exhibit Cassie wetting but rather on surfaces in the intermediate regime. We argue that droplets on these surfaces are metastable Cassie droplets whose internal Laplace pressure is insufficient to overcome the energy barrier required to homogeneously wet the surface. These metastable Cassie droplets show superior roll-off properties because the effective length of the contact line that is pinned to the surface is reduced. We develop a model that can predict the transition between the metastable Cassie and Wenzel regimes by comparing the Laplace pressure of the drop to the capillary pressure associated with the wetting-energy barrier of the textured surface. In the case of impacting droplets the water hammer and Bernoulli pressures must be compared with the capillary pressure. Experiments with impacting droplets show very good agreement with this simple pressure-balance model.
Keywords
drops; hydrophobicity; hysteresis; wetting; Cassie droplets; droplet impact; dynamic wetting; equilibrium Cassie; equilibrium Wenzel; internal Laplace pressure; sessile drops; superhydrophobic surfaces; wetting hysteresis; Energy barrier; Etching; Goniometers; Hysteresis; Metastasis; Predictive models; Solids; Surface fitting; Surface resistance; Surface texture; hysteresis; impact; superhydrophobic; wetting;
fLanguage
English
Publisher
ieee
Conference_Titel
Thermal and Thermomechanical Phenomena in Electronic Systems (ITherm), 2010 12th IEEE Intersociety Conference on
Conference_Location
Las Vegas, NV
ISSN
1087-9870
Print_ISBN
978-1-4244-5342-9
Electronic_ISBN
1087-9870
Type
conf
DOI
10.1109/ITHERM.2010.5501329
Filename
5501329
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