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Aerodynamic Performance of Flexible Flapping Wings at Bumblebee Scale in Hover Flight

机译:悬停飞行中大黄蜂规模的柔性扑翼的气动性能

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Aeroelastic response at bumblebee scale is explored using a well-validated Navier-Stokes equation solver, fully-coupled with a structural dynamics solver. Hover flight at Re=1.0×10~3 is considered, which results in a purely passive wing rotation due to the dynamic balance between aerodynamic loading, elastic restoring force, and inertial force of the wing. A systematic study with effects of variation of motion amplitude and wing stiffness on the resulting aerodynamic and structural dynamic response is reported. The aeroelastic response is non-periodic and varies cycle to cycle. Highest time-averaged lift of 1.43 is obtained at a moderate amplitude and lowest wing stiffness. Optimal efficiency corresponds to the largest motion amplitude with a moderate wing stiffness. Dual vortical structures are observed at both ends of the wing during a stroke, leading to multiple wing-wake interactions. The vortical evolution is more chaotic than at Re=1.0×10~2 that corresponds to the fruit fly scale. Nevertheless, the time history of lift for optimal efficiency motions are remarkably similar for both scales. Moreover, the time averaged lift scales with the shape deformation parameter, reinforcing the observation made at both fruit fly and water tunnel scales. Finally, the reduced frequency for the optimal efficiency motion is close to experimentally observed values for hovering bumblebees, suggesting that bumblebee wing kinematics may aim to be aerodynamicalhy optimal.
机译:使用经过充分验证的Navier-Stokes方程求解器和结构动力学求解器,对大黄蜂尺度的气动弹性响应进行了研究。考虑到Re = 1.0×10〜3时的悬停飞行,由于气动载荷,弹性回复力和机翼惯性力之间的动态平衡,导致机翼纯粹是被动旋转。进行了系统研究,研究了运动幅度和机翼刚度变化对所得空气动力和结构动力响应的影响。气动弹性响应是非周期性的,并且会逐周期变化。在中等振幅和最低机翼刚度的情况下,获得的最高平均时空升力为1.43。最佳效率对应于具有中等机翼刚度的最大运动幅度。在中风期间,在机翼的两端都观察到双重涡旋结构,从而导致了多次机翼-尾流相互作用。涡旋演化比对应于果蝇鳞的Re = 1.0×10〜2更为混乱。然而,对于两个标度而言,用于最佳效率运动的提升时间历程都非常相似。此外,具有形状变形参数的时间平均升力标尺,增强了在果蝇和水隧道标尺上的观测结果。最后,最佳效率运动的降低频率接近悬停大黄蜂的实验观察值,表明大黄蜂的机翼运动学可能旨在达到空气动力学最佳。

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