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Journal ArticleDOI

Experiments with three-dimensional riblets as an idealized model of shark skin

D. W. Bechert, +2 more
- 03 May 2000 - 
- Vol. 28, Iss: 5, pp 403-412
TLDR
In this article, a 3D-riblet surface with sharp-edged fin-shaped elements arranged in an interlocking array was investigated and the turbulent wall shear stress on this surface was measured using direct force balances.
Abstract
The skin of fast sharks exhibits a rather intriguing three-dimensional rib pattern. Therefore, the question arises whether or not such three-dimensional riblet surfaces may produce an equivalent or even higher drag reduction than straight two-dimensional riblets. Previously, the latter have been shown to reduce turbulent wall shear stress by up to 10%. Hence, the drag reduction by three-dimensional riblet surfaces is investigated experimentally. Our idealized 3D-surface consists of sharp-edged fin-shaped elements arranged in an interlocking array. The turbulent wall shear stress on this surface is measured using direct force balances. In a first attempt, wind tunnel experiments with about 365,000 tiny fin elements per test surface have been carried out. Due to the complexity of the surface manufacturing process, a comprehensive parametric study was not possible. These initial wind tunnel data, however, hinted at an appreciable drag reduction. Subsequently, in order to have a better judgement on the potential of these 3D-surfaces, oil channel experiments are carried out. In our new oil channel, the geometrical dimensions of the fins can be magnified 10 times in size as compared to the initial wind tunnel experiments, i.e., from typically 0.5 mm to 5 mm. For these latter oil channel experiments, novel test plates with variable fin configuration have been manufactured, with 1,920–4,000 fins. This enhanced variability permits measurements with a comparatively large parameter range. As a result of our measurements, it can be concluded, that 3D-riblet surfaces do indeed produce an appreciable drag reduction. We found as much as 7.3% decreased turbulent shear stress, as compared to a smooth reference plate. However, in direct comparison with 2D riblets, the performance of 3D-riblets is still inferior by about 1.7%. On the other hand, it appears conceivable, with a careful design of the fin shape (possibly supported by theory), that this inferiority in performance might be reduced. Nevertheless, at present, it seems to be rather unlikely, that 3D-riblets can significantly outperform 2D-riblets. Finally, one interesting finding remains to be mentioned: The optimum drag reduction for short 3D-riblets occurs at a lower rib height than for longer 3D-riblets or for infinitely long 2D-riblets. The same observation had been made previously on shark scales of different species with differing rib lengths, but no explanation could be given.

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Citations
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Proceedings ArticleDOI

On the Stability of Flows Over Rough Rotating Disks

TL;DR: In this paper, the effects of distributed roughness on the boundary-layer transition over a rotating disk using both theoretical and experimental approaches are investigated. But the experimental approach is limited to the case when the surface roughness increases.
DissertationDOI

Structural functional surface design and manufacture

JT Wharton
TL;DR: In this article, the authors explored the potential benefits of structural functional surfaces using facilities available within the University of Sheffield. The potential benefits were demonstrated by applying functional surfaces to a set of particular engineering applications, mainly focusing on improving the frictional performance of a surface structure for hydrodynamic bearing application.
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Transition Delay Using Biomimetic Fish Scale Arrays

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Journal ArticleDOI

Geometry mediated friction reduction in Taylor-Couette flow

TL;DR: In this article, the effect of the geometry of the textures and flow dynamics on the frictional torque measurements in Couette flow and Taylor vortex flow regimes was investigated using 3D printed texture-covered rotors in a bespoke Taylor-Couette cell.
Journal ArticleDOI

Turbulent structure effects due to ordered surface roughness

TL;DR: In this article, the effects of ordered surface feature in the form of converging-diverging riblets are investigated experimentally on an airfoil, where riblet sheets are applied onto the surface of a NACA 0026 airframe at a yaw angle of α = 0 °, ± 10 °, Riblet height of h = 1.5 mm, and spacing of s = 2 mm.
References
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Journal ArticleDOI

Turbulent drag reduction research at NASA langley: progress and plans☆

TL;DR: In this article, NASA-Langley research efforts planned at NASA Langley in view of results obtained to date in passive turbulent drag reduction experiments are discussed, including heat transfer-augmentation, noise-reduction, turboprop/fuselage interaction noise reduction, and other advantages.
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