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Drag reduction in turbulent flows over superhydrophobic surfaces

Physics of Fluids · 2009 · Vol. 21(8)
Robert DanielloNicholas E. WaterhouseJonathan P. Rothstein

Abstract

In this paper, we demonstrate that periodic, micropatterned superhydrophobic surfaces, previously noted for their ability to provide laminar flow drag reduction, are capable of reducing drag in the turbulent flow regime. Superhydrophobic surfaces contain micro- or nanoscale hydrophobic features which can support a shear-free air-water interface between peaks in the surface topology. Particle image velocimetry and pressure drop measurements were used to observe significant slip velocities, shear stress, and pressure drop reductions corresponding to drag reductions approaching 50%. At a given Reynolds number, drag reduction is found to increase with increasing feature size and spacing, as in laminar flows. No observable drag reduction was noted in the laminar regime, consistent with previous experimental results for the channel geometry considered. The onset of drag reduction occurs at a critical Reynolds number where the viscous sublayer thickness approaches the scale of the superhydrophobic microfeatures and performance is seen to increase with further reduction in viscous sublayer height. These results indicate superhydrophobic surfaces may provide a significant drag reducing mechanism for marine vessels.

Surface Modification and SuperhydrophobicityFluid Dynamics and Turbulent FlowsFluid Dynamics and Heat TransferDragLaminar flowTurbulenceLaminar sublayerPhysicsMechanicsParasitic dragParticle image velocimetryReynolds numberOpen-channel flow

Funding

  • Office of Naval Research
Citations
610
FWCI
9.24
field-weighted impact
References
32
Percentile
99%
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Citations per year
References
A Single Formula for the “Law of the Wall”
Journal of Applied Mechanics · 1961 · 1,119 citations
Drag reduction fundamentals
AIChE Journal · 1975 · 1,152 citations
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