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Towards efficient flight: insights on proper morphing-wing modulation in a bat-like robot

机译:迈向高效飞行:对蝙蝠状机器人中适当的变形翼调制的见解

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摘要

In this article, we address the question of how the flight efficiency of Micro Aerial Vehicles with variable wing geometry can be inspired by the biomechanics of bats.We use a bat-like drone with highly articulated wings using shape memory alloys (SMA) as artificial muscle-like actuators. The possibility of actively changing the wing shape by controlling the SMA actuators, let us study the effects of different wing modulation patterns on lift generation, drag reduction, and the energy cost of a wingbeat cycle. To this purpose, we present an energy-model for estimating the energy cost required by the wings during a wingbeat cycle, using experimental aerodynamic and inertial force data as inputs to the energy-model. Results allowed us determining that faster contraction of the wings during the upstroke, and slower extension during the downstroke enables to reduce the energy cost of flapping in our prototype.
机译:在本文中,我们探讨了如何通过蝙蝠的生物力学来激发具有可变机翼几何形状的微型飞行器的飞行效率的问题,我们使用形状记忆合金(SMA)作为人工材料的蝙蝠状无人机,具有高度铰接的机翼肌肉状的执行器。通过控制SMA致动器主动改变机翼形状的可能性,让我们研究不同机翼调制模式对升力产生,减阻和机翼节拍周期的能量成本的影响。为了这个目的,我们提出了一个能量模型,使用实验的空气动力学和惯性力数据作为能量模型的输入,以估算机翼周期中机翼所需的能量成本。结果使我们能够确定,在上冲程期间机翼更快地收缩,而在下冲程期间机翼伸展得较慢,这可以降低原型机扑翼的能源成本。

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