三维打印被动刷毛鲨鱼皮模型控制湍流边界层分离。

IF 3.1 3区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY
A Bonacci, K Wong, A Lang, L M Santos
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引用次数: 0

摘要

湍流边界层分离在许多工程应用中都是有问题的。然而,大自然可能有一个解决方案,在短鳍鲭鲨身上发现了灵活的鲨鱼鳞片,这种鳞片已被证明在反向流动条件下被动地竖起鬃毛,并控制流动分离。研究这些鲨鱼尺度如何与边界层近壁区域的反向流动相互作用,有助于更好地理解流体-鲨鱼尺度的相互作用。扩大几何形状和构建鲨鱼皮肤的3D打印模型是为飞机应用开发生物启发表面的最佳途径。在水洞装置中,在平板上使用旋转圆柱体,诱导逆压梯度在跳闸湍流边界层上产生分离区域。柔性和刚性的3D打印鲨鱼鳞片可以复制50度的被动刚毛角度,其冠长为3.6毫米,是真正鲨鱼的20倍。在这个实验中,边界层增长到足够大的尺寸,从而增加了流动的尺度,使其更容易被DPIV测量,并允许模型的大小适应在边界层底部10%的范围内。研究表明,在低回流速度下,柔性尺度在低层被动移动和混合动量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Control of turbulent boundary layer separation by a 3D printed shark skin model with passive bristling.

Turbulent boundary layer separation can be problematic in many engineering applications. However, nature may have a solution in the form of flexible shark scales found on the shortfin mako, which have been proven to passively bristle under reversing flow conditions and control flow separation. An investigation of how these shark scales interact with reversing flow in the near-wall regions of the boundary layer is of interest to better understand the fluid-shark scale interactions. Enlarging the geometry and constructing 3D printed models of shark skin is the best route forward to developing a bioinspired surface for aircraft applications. Using a rotating cylinder above a flat plate in a water tunnel setup, an adverse pressure gradient was induced, creating a separated region over a tripped turbulent boundary layer. Movable and rigid 3D printed shark scales that replicate passive bristling angles of 50are constructed with crown lengths of 3.6 mm, twenty times greater than those of a real shark. In this experiment, the boundary layer grows to sizes large enough that the scale of the flow increases, making it more measurable to digital particle image velocimetry and allowing models to be sized so that they fit within the bottom 10% of the boundary layer. At low reversing flow velocities, the movable scales were seen to passively flap and mix momentum in the lower boundary layer.

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来源期刊
Bioinspiration & Biomimetics
Bioinspiration & Biomimetics 工程技术-材料科学:生物材料
CiteScore
5.90
自引率
14.70%
发文量
132
审稿时长
3 months
期刊介绍: Bioinspiration & Biomimetics publishes research involving the study and distillation of principles and functions found in biological systems that have been developed through evolution, and application of this knowledge to produce novel and exciting basic technologies and new approaches to solving scientific problems. It provides a forum for interdisciplinary research which acts as a pipeline, facilitating the two-way flow of ideas and understanding between the extensive bodies of knowledge of the different disciplines. It has two principal aims: to draw on biology to enrich engineering and to draw from engineering to enrich biology. The journal aims to include input from across all intersecting areas of both fields. In biology, this would include work in all fields from physiology to ecology, with either zoological or botanical focus. In engineering, this would include both design and practical application of biomimetic or bioinspired devices and systems. Typical areas of interest include: Systems, designs and structure Communication and navigation Cooperative behaviour Self-organizing biological systems Self-healing and self-assembly Aerial locomotion and aerospace applications of biomimetics Biomorphic surface and subsurface systems Marine dynamics: swimming and underwater dynamics Applications of novel materials Biomechanics; including movement, locomotion, fluidics Cellular behaviour Sensors and senses Biomimetic or bioinformed approaches to geological exploration.
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