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首页> 外文期刊>Bulletin of the American Physical Society >APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - How Insects Initiate Flight: Computational Analysis of a Damselfly in Takeoff Flight
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APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - How Insects Initiate Flight: Computational Analysis of a Damselfly in Takeoff Flight

机译:APS-流体动力学APS部门第70届年会-事件-昆虫如何发起飞行:起飞飞行中一名蜻蜓的计算分析

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Flight initiation is essential for survival in biological fliers and can be classified into jumping and non-jumping takeoffs. During jumping takeoffs, the legs generate most of the initial impulse. Whereas the wings generate most of the forces in non-jumping takeoffs, which are usually voluntary, slow, and stable. It is of interest to understand how non-jumping takeoffs occur and what strategies insects use to generate the required forces. Using a high fidelity computational fluid dynamics simulation, we identify the flow features and compute the wing aerodynamic forces to elucidate how flight forces are generated by a damselfly performing a non-jumping takeoff. Our results show that a damselfly generates about three times its bodyweight during the first half-stroke for liftoff while flapping through a steeply inclined stroke plane and slicing the air at high angles of attack. Consequently, a Leading Edge Vortex (LEV) is formed during both the downstroke and upstroke on all the four wings. The formation of the LEV, however, is inhibited in the subsequent upstrokes following takeoff. Accordingly, we observe a drastic reduction in the magnitude of the aerodynamic force, signifying the importance of LEV in augmenting force production.
机译:飞行起航对于生物飞行器的生存至关重要,可以分为跳跃式起飞和非跳跃式起飞。在跳跃式起飞过程中,腿部产生大部分初始冲力。机翼在非跳跃式起飞中产生了大部分力量,通常是自愿,缓慢和稳定的。有趣的是要了解如何发生非跳跃式起飞,以及昆虫采用何种策略来产生所需的力。使用高逼真度的计算流体动力学模拟,我们确定了流动特征并计算了机翼空气动力,以阐明如何通过蜻蜓点水的非跳跃式起飞产生飞行力。我们的结果表明,在上半个冲程中,一只豆娘产生的体重大约是其自身重量的三倍,同时要通过一个陡峭的斜面拍打并以高攻角将空气切成薄片。因此,在所有四个机翼的下冲程和上冲程期间均形成了前缘涡流(LEV)。然而,在起飞后的后续上升行程中,LEV的形成受到抑制。因此,我们观察到空气动力的大小急剧下降,这表明LEV在增加力产生中的重要性。

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