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A wing-assisted running robot and implications for avian flight evolution

机译:机翼辅助跑步机器人及其对鸟类飞行进化的影响

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摘要

DASH+Wings is a small hexapedal winged robot that uses flapping wings to increase its locomotion capabilities. To examine the effects of flapping wings, multiple experimental controls for the same locomotor platform are provided by wing removal, by the use of inertially similar lateral spars, and by passive rather than actively flapping wings. We used accelerometers and high-speed cameras to measure the performance of this hybrid robot in both horizontal running and while ascending inclines. To examine consequences of wing flapping for aerial performance, we measured lift and drag forces on the robot at constant airspeeds and body orientations in a wind tunnel; we also determined equilibrium glide performance in free flight. The addition of flapping wings increased the maximum horizontal running speed from 0.68 to 1.29 m s~(-1), and also increased the maximum incline angle of ascent from 5.6° to 16.9°. Free flight measurements show a decrease of 10.3° in equilibrium glide slope between the flapping and gliding robot. In air, flapping improved the mean lift:drag ratio of the robot compared to gliding at all measured body orientations and airspeeds. Low-amplitude wing flapping thus provides advantages in both cursorial and aerial locomotion. We note that current support for the diverse theories of avian flight origins derive from limited fossil evidence, the adult behavior of extant flying birds, and developmental stages of already volant taxa. By contrast, addition of wings to a cursorial robot allows direct evaluation of the consequences of wing flapping for locomotor performance in both running and flying.
机译:DASH + Wings是一款小型六足翼机器人,它使用拍打翼来增加其运动能力。为了检查拍打襟翼的效果,通过移动机翼,使用惯性相似的侧向翼梁以及被动拍打而不是主动拍打的襟翼,对同一运动平台进行了多个实验控制。我们使用加速度计和高速摄像头来测量这种混合动力机器人在水平行驶和倾斜时的性能。为了检查机翼拍打对空中性能的影响,我们在风洞中以恒定空速和身体方向测量了机器人上的升力和阻力。我们还确定了自由飞行中的平衡滑行性能。附加拍打翼使最大水平行进速度从0.68增至1.29 m s〜(-1),最大上升倾斜角也从5.6°增至16.9°。自由飞行测量结果表明,拍打和滑行机器人之间的平衡滑行坡度降低了10.3°。与在所有测得的身体方向和空速下滑动相比,在空中,拍打可以改善机器人的平均升力:阻力比。因此,低振幅机翼拍打在光标移动和空中移动方面均具有优势。我们注意到,当前对鸟类飞行起源的各种理论的支持来自有限的化石证据,现存飞鸟的成年行为以及已经繁茂的类群的发育阶段。相比之下,在游标机器人上增加机翼可以直接评估机翼拍打对运行和飞行中运动性能的影响。

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