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Aerodynamics sensing and control of insect-scale flapping-wing flight

机译:昆虫尺度扑翼飞行的空气动力学传感和控制

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摘要

There are nearly a million known species of flying insects and 13 000 species of flying warm-blooded vertebrates, including mammals, birds and bats. While in flight, their wings not only move forward relative to the air, they also flap up and down, plunge and sweep, so that both lift and thrust can be generated and balanced, accommodate uncertain surrounding environment, with superior flight stability and dynamics with highly varied speeds and missions. As the size of a flyer is reduced, the wing-to-body mass ratio tends to decrease as well. Furthermore, these flyers use integrated system consisting of wings to generate aerodynamic forces, muscles to move the wings, and sensing and control systems to guide and manoeuvre. In this article, recent advances in insect-scale flapping-wing aerodynamics, flexible wing structures, unsteady flight environment, sensing, stability and control are reviewed with perspective offered. In particular, the special features of the low Reynolds number flyers associated with small sizes, thin and light structures, slow flight with comparable wind gust speeds, bioinspired fabrication of wing structures, neuron-based sensing and adaptive control are highlighted.
机译:已知有将近一百万种飞行昆虫物种和一万三千种飞行中的温血脊椎动物,包括哺乳动物,鸟类和蝙蝠。在飞行过程中,它们的机翼不仅相对于空气向前移动,而且还可以上下摆动,俯冲和后掠,从而既可以产生升力和推力,也可以使其平衡,从而适应不确定的周围环境,并具有出色的飞行稳定性和动力。速度和任务各不相同。随着飞行物尺寸的减小,机翼与车身的质量比也趋于减小。此外,这些传单使用的集成系统包括机翼以产生空气动力,肌肉使机翼移动以及感应和控制系统进行引导和操纵。在这篇文章中,从观点的角度回顾了昆虫尺度的襟翼空气动力学,柔性机翼结构,不稳定的飞行环境,传感,稳定性和控制方面的最新进展。尤其要强调的是,雷诺数较低的传单具有以下特点:体积小,结构轻薄,风速可比,飞行缓慢,机翼结构受到生物启发制造,基于神经元的感应和自适应控制。

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