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Scaling law and enhancement of lift generation of an insect-size hovering flexible wing

机译:昆虫大小的盘旋柔性机翼的定标规律和升力产生的增强

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摘要

We report a comprehensive scaling law and novel lift generation mechanisms relevant to the aerodynamic functions of structural flexibility in insect flight. Using a Navier–Stokes equation solver, fully coupled to a structural dynamics solver, we consider the hovering motion of a wing of insect size, in which the dynamics of fluid–structure interaction leads to passive wing rotation. Lift generated on the flexible wing scales with the relative shape deformation parameter, whereas the optimal lift is obtained when the wing deformation synchronizes with the imposed translation, consistent with previously reported observations for fruit flies and honeybees. Systematic comparisons with rigid wings illustrate that the nonlinear response in wing motion results in a greater peak angle compared with a simple harmonic motion, yielding higher lift. Moreover, the compliant wing streamlines its shape via camber deformation to mitigate the nonlinear lift-degrading wing–wake interaction to further enhance lift. These bioinspired aeroelastic mechanisms can be used in the development of flapping wing micro-robots.
机译:我们报告了一个全面的缩放定律和与昆虫飞行中结构柔性的气动功能相关的新型升力产生机制。使用与结构动力学求解器完全耦合的Navier–Stokes方程求解器,我们考虑了昆虫大小的机翼的悬停运动,其中,流固耦合的动力学导致机翼被动旋转。具有相对形状变形参数的柔性机翼尺度上产生的升力,而当机翼变形与所施加的平移同步时获得最佳升力,这与先前报道的对果蝇和蜜蜂的观察一致。与刚性机翼的系统比较表明,与简单的谐波运动相比,机翼运动的非线性响应会导致更大的峰值角,从而产生更高的升力。此外,顺应性机翼通过外倾变形简化了其形状,从而减轻了非线性的升力-降级机翼-尾流相互作用,从而进一步增强了升力。这些受生物启发的空气弹性机制可用于开发襟翼微机器人。

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