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首页> 外文期刊>Royal Society Open Science >Hovering hummingbird wing aerodynamics during the annual cycle. I. Complete wing
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Hovering hummingbird wing aerodynamics during the annual cycle. I. Complete wing

机译:在一年周期中盘旋的蜂鸟翅膀空气动力学。一,完整机翼

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The diverse hummingbird family (Trochilidae) has unique adaptations for nectarivory, among which is the ability to sustain hover-feeding. As hummingbirds mainly feed while hovering, it is crucial to maintain this ability throughout the annual cycle—especially during flight-feather moult, in which wing area is reduced. To quantify the aerodynamic characteristics and flow mechanisms of a hummingbird wing throughout the annual cycle, time-accurate aerodynamic loads and flow field measurements were correlated over a dynamically scaled wing model of Anna’s hummingbird ( Calypte anna ). We present measurements recorded over a model of a complete wing to evaluate the baseline aerodynamic characteristics and flow mechanisms. We found that the vorticity concentration that had developed from the wing’s leading-edge differs from the attached vorticity structure that was typically found over insects’ wings; firstly, it is more elongated along the wing chord, and secondly, it encounters high levels of fluctuations rather than a steady vortex. Lift characteristics resemble those of insects; however, a 20% increase in the lift-to-torque ratio was obtained for the hummingbird wing model. Time-accurate aerodynamic loads were also used to evaluate the time-evolution of the specific power required from the flight muscles, and the overall wingbeat power requirements nicely matched previous studies.
机译:多样化的蜂鸟家族(Trochilidae)对花蜜有独特的适应性,其中之一就是能够维持悬浮喂养。由于蜂鸟主要在盘旋时进食,因此在整个年度周期中保持这种能力至关重要,尤其是在羽翼换羽期间,其中羽翼面积减小。为了量化蜂鸟翅膀在整个年度循环中的空气动力学特性和流动机制,在安娜蜂鸟(Calypte anna)的动态缩放的机翼模型上,将时间精确的空气动力学负载和流场测量结果进行了关联。我们提出了记录在整个机翼模型上的测量值,以评估基线空气动力学特性和流动机制。我们发现,从机翼前沿产生的旋涡浓度不同于通常在昆虫的机翼上发现的附着旋涡结构。首先,它沿着翼弦变长,其次,它遇到了高水平的起伏而不是稳定的涡旋。举升特性类似于昆虫。但是,蜂鸟机翼模型的升力/转矩比提高了20%。时间精确的空气动力学负载也被用于评估飞行肌肉所需的特定功率的时间演变,而整体机翼拍功率要求与先前的研究很好地吻合。

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