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首页> 外文期刊>The Journal of Experimental Biology >The aerodynamics of insect flight [Review]
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The aerodynamics of insect flight [Review]

机译:昆虫飞行的空气动力学[综述]

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The flight of insects has fascinated physicists and biologists for more than a century. Yet, until recently, researchers were unable to rigorously quantify the complex wing motions of flapping insects or measure the forces and flows around their wings. However, recent developments in high-speed videography and tools for computational and mechanical modeling have allowed researchers to make rapid progress in advancing our understanding of insect flight. These mechanical and computational fluid dynamic models, combined with modern flow visualization techniques, have revealed that the fluid dynamic phenomena underlying flapping flight are different from those of non-flapping, 2-D wings on which most previous models were based. In particular, even at high angles of attack, a prominent leading edge vortex remains stably attached on the insect wing and does not shed into an unsteady wake, as would be expected from non-flapping 2-D wings. Its presence greatly enhances the forces generated by the wing, thus enabling insects to hover or maneuver. In addition, flight forces are further enhanced by other mechanisms acting during changes in angle of attack, especially at stroke reversal, the mutual interaction of the two wings at dorsal stroke reversal or wing-wake interactions following stroke reversal. This progress has enabled the development of simple analytical and empirical models that allow us to calculate the instantaneous forces on flapping insect wings more accurately than was previously possible. It also promises to foster new and exciting multi-disciplinary collaborations between physicists who seek to explain the phenomenology, biologists who seek to understand its relevance to insect physiology and evolution, and engineers who are inspired to build micro-robotic insects using these principles. This review covers the basic physical principles underlying flapping flight in insects, results of recent experiments concerning the aerodynamics of insect flight, as well as the different approaches used to model these phenomena.
机译:昆虫的飞行使物理学家和生物学家着迷了一个多世纪。然而,直到最近,研究人员仍无法精确地量化昆虫拍打的复杂机翼运动或测量其机翼周围的力和流量。但是,高速摄影术以及用于计算和机械建模的工具的最新发展使研究人员在增进对昆虫飞行的理解方面取得了迅速的进步。这些机械和计算的流体动力学模型,结合现代的流动可视化技术,已经揭示了扑动飞行背后的流体动力学现象与大多数先前模型所基于的非扑灭二维机翼的流体动力学现象不同。尤其是,即使在高攻角下,突出的前缘涡流也仍然稳定地附着在昆虫的机翼上,并且不会掉落到不稳定的尾流中,这是非拍打式二维机翼所期望的。它的存在极大地增强了机翼产生的力,从而使昆虫能够盘旋或机动。另外,通过在攻角变化期间,特别是在行程反转时,两个机翼在背侧行程反转时的相互相互作用或在行程反转后的机翼-尾部相互作用之间相互作用的其他机制进一步增强了飞行力。这一进展使得能够开发简单的分析和经验模型,从而使我们能够比以前更精确地计算拍打昆虫翅膀上的瞬时力。它还有望在寻求解释现象学的物理学家,寻求了解其与昆虫生理学和进化相关性的生物学家以及受启发使用这些原理构建微型机器人昆虫的工程师之间,促进新的,令人兴奋的多学科合作。这篇综述涵盖了昆虫扑动飞行的基本物理原理,有关昆虫飞行的空气动力学的最新实验结果,以及用于模拟这些现象的不同方法。

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