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In vivo recording of aerodynamic force with an aerodynamic force platform: from drones to birds

机译:使用气动平台在体内记录气动力:从无人机到鸟类

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摘要

Flapping wings enable flying animals and biomimetic robots to generate elevated aerodynamic forces. Measurements that demonstrate this capability are based on experiments with tethered robots and animals, and indirect force calculations based on measured kinematics or airflow during free flight. Remarkably, there exists no method to measure these forces directly during free flight. Such in vivo recordings in freely behaving animals are essential to better understand the precise aerodynamic function of their flapping wings, in particular during the downstroke versus upstroke. Here, we demonstrate a new aerodynamic force platform (AFP) for non-intrusive aerodynamic force measurement in freely flying animals and robots. The platform encloses the animal or object that generates fluid force with a physical control surface, which mechanically integrates the net aerodynamic force that is transferred to the earth. Using a straightforward analytical solution of the Navier–Stokes equation, we verified that the method is accurate. We subsequently validated the method with a quadcopter that is suspended in the AFP and generates unsteady thrust profiles. These independent measurements confirm that the AFP is indeed accurate. We demonstrate the effectiveness of the AFP by studying aerodynamic weight support of a freely flying bird in vivo. These measurements confirm earlier findings based on kinematics and flow measurements, which suggest that the avian downstroke, not the upstroke, is primarily responsible for body weight support during take-off and landing.
机译:拍打翅膀使飞行中的动物和仿生机器人产生更高的空气动力。证明此功能的测量结果是基于对拴系机器人和动物的实验,以及基于自由飞行过程中测得的运动学或气流的间接力计算。值得注意的是,没有方法可以在自由飞行期间直接测量这些力。这种自由表现动物的体内记录对于更好地理解其拍打翅膀的精确空气动力学功能至关重要,尤其是在下冲程和上冲程之间。在这里,我们演示了一种用于自由飞行的动物和机器人中非侵入式空气动力测量的新型空气动力平台(AFP)。平台将产生流体力的动物或物体封闭在物理控制表面上,该物理控制表面将传递到地球的净空气动力机械地整合在一起。通过使用Navier–Stokes方程的简单解析解,我们验证了该方法的准确性。随后,我们使用悬挂在AFP中并产生不稳定推力曲线的四轴飞行器验证了该方法。这些独立的测量结果证实AFP确实是准确的。我们通过研究体内自由飞行的鸟类的空气动力学重量支持来证明AFP的有效性。这些测量结果基于运动学和流量测量结果证实了较早的发现,这表明禽类向下冲程而非上冲程是起降过程中体重的主要支持者。

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