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The three-dimensional leading-edge vortex of a hovering model hawkmoth

机译:盘旋式天蛾的三维前沿涡旋

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摘要

Recent flow visualisation experiments with the hawkmoth, Manduca sexta, revealed small but clear leading-edge vortex and a pronounced three-dimensional flow. Details of this flow pattern were studied with a scaled-up, robotic insect ('the flapper') that accurately mimicked the wing movements of a hovering hawkmoth. Smoke released from the leading edge of the flapper wing confirmed the existence of a small, strong and stable leading-edge vortex, increasing in size from wingbase to wingtip. Between 25 and 75 per cent of the wing length, its diameter increased approximately from 10 to 50 per cent of the wing chord. The leading-edge vortex had a strong axial flow veolocity, which stabilized it and reduced its diamater. The vortex separated from the wing at approximately 75 per cent of the wing length and thus fed vorticity into a large, tangled tip vortex. If the circulation of the leading-edge vortex were fully used for lift generation, it could support up to two-thirds of the hawkmoth's weight during the downstroke. The growth of this circulation with time and spanwise position clearly identify dynamic stall as the unsteady aerodynamic mechanism responsible for high lift production by hovering hawkmoths and possibly also by many other insect species.
机译:最近用鹰蛾Manduca sexta进行的流动可视化实验显示出小而清晰的前沿涡流和明显的三维流动。使用放大的,自动模仿的飞蛾的机翼运动的大型机械昆虫(“挡板”)研究了这种流动模式的细节。襟翼机翼前缘释放出的烟雾证实存在一个小的,坚固而稳定的前缘涡流,从涡旋翼到翼尖的尺寸不断增大。在机翼长度的25%至75%之间,其直径大约从机翼弦的10%增至50%。前缘涡流具有很强的轴向流动速度,从而使其稳定并减小了其直径。涡旋约占机翼长度的75%与机翼分开,从而使涡旋进入大而纠结的尖端涡旋中。如果前沿涡流的循环完全用于产生升力,那么在下冲程期间,它可以支撑鹰蛾重量的三分之二。这种循环随时间和跨度位置的增长清楚地将动态失速识别为不稳定的空气动力学机制,这是由于悬停鹰蛾以及可能还由许多其他昆虫引起的高升力产生。

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