首页> 外文期刊>The Journal of Experimental Biology >Hawkmoth flight in the unsteady wakes of flowers
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Hawkmoth flight in the unsteady wakes of flowers

机译:Hawkmoth在不稳定的醒来的鲜花中飞行

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摘要

Flying animals maneuver and hover through environments where wind gusts and flower wakes produce unsteady flow. Although both flight maneuvers and aerodynamic mechanisms have been studied independently, little is known about how these interact in an environment where flow is already unsteady. Moths forage from flowers by hovering in the flower's wake. We investigated hawkmoths tracking a 3D-printed robotic flower in a wind tunnel. We visualized the flow in the wake and around the wings and compared tracking performance with previous experiments in a still-air flight chamber. As in still air, moths flying in the flower wake exhibit near-perfect tracking at the low frequencies at which natural flowers move. However, tracking in the flower wake results in a larger overshoot between 2 and 5 Hz. System identification of flower tracking reveals that moths also display reduced-order dynamics in wind compared with still air. Smoke visualization of the flower wake shows that the dominant vortex shedding corresponds to the same frequency band as the increased overshoot. Despite these large effects on tracking dynamics in wind, the leading edge vortex (LEV) remains bound to the wing throughout the wingstroke and does not burst. The LEV also maintains the same qualitative structure seen in steady air. Persistence of a stable LEV during decreased flower tracking demonstrates the interplay between hovering and maneuvering.
机译:飞行动物机动和悬停在风阵风和花唤醒产生不稳定的流动的环境中。虽然已经独立研究了飞行机制和空气动力学机制,但对于这些流动已经不稳定的环境中,众所周知。通过在花的唤醒中徘徊来从鲜花中觅食。我们调查了在风洞中跟踪了一个追踪了一朵3D印刷的机器人花的Hawkmoths。我们在瓶盖和周围的翅膀上显示了流动,并将跟踪性能与先前的静物飞行室进行了比较了跟踪性能。与静止的空气一样,飞蛾在花唤醒中飞行的飞蛾在自然花朵移动的低频下展示了近乎完美的跟踪。然而,在花唤醒中跟踪导致2到5 Hz之间的较大过冲。系统识别花卉跟踪显示,与仍然空气相比,飞蛾也显示出风中的减少动态。烟雾唤醒的烟雾可视化表明,主导涡流脱落对应于相同的频带,因为增加的过冲。尽管对风中的跟踪动力学产生了很大的影响,但前沿涡旋(LEV)仍然绑定到整个翼略的机翼,并且不会爆裂。 LEV还保持相同的定性结构在稳定的空气中看到。在减少的花跟踪期间稳定的稳定性展示了悬停和操纵之间的相互作用。

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