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Flapping wing aerodynamics of a numerical biological flyer model in hovering flight

机译:悬停飞行中数值生物传单模型的拍打翼空气动力学

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Flapping flyers showcase excellent flight performances under many flight environments. In particular, hovering is a miracle of insects that can be seen for most of sizes of flying insects. Understanding of sizing or Reynolds numbers effects in hovering flights on the aerodynamics is not only of interest to the micro-air-vehicle ommunity but also of importance to comparative morphologists. In this study, a computational study of such size effects on insect hovering aerodynamics is conducted, which is performed using an integrated numerical framework consisting of the modeling of realistic wing-body morphology, the modeling of flapping-wing and body kinematics, and an in-house Navier-Stokes solver. Computational results of four typical insects in hovering flight including a thrips, a fruitfly, a honeybee, and a hawkmoth over a wide range of Reynolds numbers from O(10~1) to O(10~4) are presented. Furthermore the correlation among the near-and far-field flow features, the aerodynamic force production, and the wing kinematics is highlighted.
机译:拍打传单展示了在许多飞行环境下的出色飞行性能。特别是,盘旋是昆虫的奇迹,对于大多数大小的飞行昆虫来说,都可以看到它们。了解悬停飞行中的尺寸或雷诺数对空气动力学的影响不仅是微型航空器机体的兴趣,而且对比较形态学家也很重要。在这项研究中,进行了这种大小对昆虫盘旋空气动力学的影响的计算研究,该研究使用一个集成的数值框架进行,该框架包括逼真的机翼-身体形态建模,襟翼和人体运动学建模以及一个内部的Navier-Stokes解算器。提出了四种典型昆虫盘旋飞行的结果,其中包括蓟马,果蝇,蜜蜂和天蛾,它们的雷诺数范围从O(10〜1)到O(10〜4)。此外,还强调了近场和远场流动特征,空气动力产生和机翼运动学之间的相关性。

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