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Coevolving advances in animal flight and aerial robotics

机译:动物飞行和空中机器人技术的共同进步

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摘要

Our understanding of animal flight has inspired the design of new aerial robots with more effective flight capacities through the process of biomimetics and bioinspiration. The aerodynamic origin of the elevated performance of flying animals remains, however, poorly understood. In this themed issue, animal flight research and aerial robot development coalesce to offer a broader perspective on the current advances and future directions in these coevolving fields of research. Together, four reviews summarize and 14 reports contribute to our understanding of low Reynolds number flight. This area of applied aerodynamics research is challenging to dissect due to the complicated flow phenomena that include laminar–turbulent flow transition, laminar separation bubbles, delayed stall and nonlinear vortex dynamics. Our mechanistic understanding of low Reynolds number flight has perhaps been advanced most by the development of dynamically scaled robot models and new specialized wind tunnel facilities: in particular, the tiltable Lund flight tunnel for animal migration research and the recently developed AFAR hypobaric wind tunnel for high-altitude animal flight studies. These world-class facilities are now complemented with a specialized low Reynolds number wind tunnel for studying the effect of turbulence on animal and robot flight in much greater detail than previously possible. This is particular timely, because the study of flight in extremely laminar versus turbulent flow opens a new frontier in our understanding of animal flight. Advancing this new area will offer inspiration for developing more efficient high-altitude aerial robots and removes roadblocks for aerial robots operating in turbulent urban environments.
机译:我们对动物飞行的理解启发了新型空中机器人的设计,该过程通过仿生和生物启发过程实现了更有效的飞行能力。然而,人们对飞行动物表现出较高的空气动力起因仍然知之甚少。在这个主题问题中,动物飞行研究和空中机器人开发的结合,为这些共同发展的研究领域中的当前进展和未来方向提供了更广阔的视野。总共有4条评论总结和14条报告为我们对低雷诺数飞行的理解做出了贡献。由于复杂的流动现象,包括层流-湍流过渡,层流分离气泡,延迟失速和非线性涡旋动力学,因此在应用空气动力学研究领域很难进行剖析。我们对低雷诺数飞行的机械理解通过动态缩放的机器人模型和新型专用风洞设施的开发得到了最先进的发展:特别是用于动物迁移研究的可倾斜隆德飞行隧道和最近开发的用于高海拔地区的AFAR低压风洞高空动物飞行研究。这些世界一流的设施现在得到了专门的低雷诺数风洞的补充,用于比以往更详细地研究湍流对动物和机器人飞行的影响。这是特别及时的,因为研究极层流与湍流的飞行为我们对动物飞行的理解开辟了新的领域。推进这一新领域将为开发更高效的高空空中机器人提供灵感,并消除在动荡的城市环境中运行的空中机器人的障碍。

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