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Force production and flow structure of the leading edge vortex on flapping wings at high and low Reynolds numbers

机译:雷诺数高和低时拍翼上前缘涡流的力产生和流动结构

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摘要

The elevated aerodynamic performance of insects has been attributed in part to the generation and maintenance of a stable region of vorticity known as the leading edge vortex (LEV). One explanation for the stability of the LEV is that spiraling axial flow within the vortex core drains energy into the tip vortex, forming a leading-edge spiral vortex analogous to the flow structure generated by delta wing aircraft. However, whereas spiral flow is a conspicuous feature of flapping wings at Reynolds numbers (Re) of 5000, similar experiments at Re=100 failed to identify a comparable structure. We used a dynamically scaled robot to investigate both the forces and the flows created by a wing undergoing identical motion at Re of ~120 and ~1400. In both cases, motion at constant angular velocity and fixed angle of attack generated a stable LEV with no evidence of shedding. At Re=1400, flow visualization indicated an intense narrow region of spanwise flow within the core of the LEV, a feature conspicuously absent at Re=120. The results suggest that the transport of vorticity from the leading edge to the wake that permits prolonged vortex attachment takes different forms at different Re.
机译:昆虫提高的空气动力学性能部分归因于被称为前缘涡旋(LEV)的涡旋稳定区域的产生和维持。 LEV稳定性的一种解释是涡旋核心内的螺旋状轴向流将能量排放到尖端涡旋中,形成了类似于三角翼飞机产生的流动结构的前沿螺旋旋涡。但是,尽管螺旋流是雷诺数(Re)为5000时拍打翅膀的显着特征,但在Re = 100处的类似实验未能确定可比的结构。我们使用了动态缩放的机器人来研究机翼在Re分别为120和1400时经历相同运动的力和流动。在这两种情况下,以恒定角速度和固定攻角运动都会产生稳定的LEV,而没有脱落的迹象。在Re = 1400处,流动可视化显示LEV核心内跨展流的狭窄区域,这在Re = 120处明显缺乏。结果表明,涡流从前缘到尾流的传输(允许长时间的涡流附着)在不同的Re下具有不同的形式。

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