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Experimental investigation of some aspects of insect-like flapping flight aerodynamics for application to micro air vehicles

机译:昆虫状扑翼飞行空气动力学某些方面的实验研究,应用于微型飞机

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摘要

Insect-like flapping flight offers a power-efficient and highly manoeuvrable basis for micro air vehicles for indoor applications. Some aspects of the aerodynamics associated with the sweeping phase of insect wing kinematics are examined by making particle image velocimetry measurements on a rotating wing immersed in a tank of seeded water. The work is motivated by the paucity of data with quantified error on insect-like flapping flight, and aims to fill this gap by providing a detailed description of the experimental setup, quantifying the uncertainties in the measurements and explaining the results. The experiments are carried out at two Reynolds numbers—500 and 15,000—accounting for scales pertaining to many insects and future flapping-wing micro air vehicles, respectively. The results from the experiments are used to describe prominent flow features, and Reynolds number-related differences are highlighted. In particular, the behaviour of the leading-edge vortex at these Reynolds numbers is studied and the presence of Kelvin–Helmholtz instability observed at the higher Reynolds number in computational fluid dynamics calculations is also verified.
机译:像昆虫一样的扑翼飞行为用于室内应用的微型飞行器提供了高能效和高度可操纵性的基础。通过对浸没在种子水箱中的旋转机翼进行颗粒图像测速测量,可以检查与昆虫机翼运动学扫掠阶段相关的空气动力学某些方面。这项工作是由于缺乏像昆虫一样拍打飞行中的量化误差的数据而激发的,旨在通过提供对实验装置的详细描述,量化测量中的不确定性并解释结果来填补这一空白。实验是在两个雷诺数(分别为500和15,000)下进行的,分别说明了与许多昆虫和未来的襟翼微型飞行器有关的尺度。实验的结果用于描述突出的流动特征,并强调了雷诺数相关的差异。特别是,研究了在这些雷诺数下前沿涡旋的行为,并验证了在较高的雷诺数下在计算流体动力学计算中观察到的开尔文-亥姆霍兹不稳定性的存在。

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