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The dynamics of hovering flight in hummingbirds, insects and bats with implications for aerial robotics

机译:蜂巢,昆虫和蝙蝠悬停飞行的动态,具有空中机器人的影响

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摘要

We analyze the effects of morphology and wing kinematics on the performance of hovering flight. We present a simplified dynamical model with body translational and rotational degrees of freedom that incorporates the flapping, long-axis wing rotation and folding of the wing. To validate our simulation, we compare our results with direct measurements from hovering insects, hummingbirds and bats. Results show that long-axis wing rotation angle (a proxy for pronation) has a significant effect on energy efficiency. For a given wing rotation amplitude, the hovering system has a power-optimal flapping frequency for each stroke-plane orientation, and that frequency closely corresponds to the wingbeat frequencies observed in a diverse range of hummingbird species. We find that larger animals (with larger total mass and wing size), such as bats, require more power to maintain a stable hovering orbit and that hovering with a constant wingspan becomes increasingly impractical with increasing body size. We show, as an exemplar, that for a system of the size of a hovering bat, e.g. Glossophaga soricina, hovering with constant wingspan is dynamically possible, but is implausible and inefficient. For these conditions, hovering with varying wingspan, retracting the wing on the upstroke, is a more realistic hovering modality.
机译:我们分析了形态和翼运动学对悬停飞行性能的影响。我们介绍了一种具有身体平移和旋转自由度的简化动态模型,其包括凸起,长轴翼旋转和机翼的折叠。为了验证我们的模拟,我们将结果与悬停昆虫,蜂鸟和蝙蝠的直接测量进行比较。结果表明,长轴翼旋转角度(校牙代理)对能效具有显着影响。对于给定的翼旋转幅度,悬停系统具有用于每个行程面取向的电力最佳拍摄频率,并且该频率与在各种蜂鸟类中观察到的翼袋频率紧密相对应。我们发现较大的动物(具有较大的总质量和翼尺寸),例如蝙蝠,需要更大的功率来维持稳定的悬浮轨道,并且随着体型的增加变得越来越不切实际。我们以悬停蝙蝠的尺寸的系统显示为示例,例如,例如悬停蝙蝠的系统。用恒定的翅膀徘徊的胶囊索里纳是动态的,但是难以置信和效率的难度。对于这些条件,在不同的翅膀上徘徊,在上行程上缩回机翼,是一种更真实的悬停模式。

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