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Biomechanics and biomimetics in insect-inspired flight systems

机译:昆虫激发的飞行系统中的生物力学和仿生学

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摘要

Insect- and bird-size drones—micro air vehicles (MAV) that can perform autonomous flight in natural and man-made environments are now an active and well-integrated research area. MAVs normally operate at a low speed in a Reynolds number regime of 104–105 or lower, in which most flying animals of insects, birds and bats fly, and encounter unconventional challenges in generating sufficient aerodynamic forces to stay airborne and in controlling flight autonomy to achieve complex manoeuvres. Flying insects that power and control flight by flapping wings are capable of sophisticated aerodynamic force production and precise, agile manoeuvring, through an integrated system consisting of wings to generate aerodynamic force, muscles to move the wings and a control system to modulate power output from the muscles. In this article, we give a selective review on the state of the art of biomechanics in bioinspired flight systems in terms of flapping and flexible wing aerodynamics, flight dynamics and stability, passive and active mechanisms in stabilization and control, as well as flapping flight in unsteady environments. We further highlight recent advances in biomimetics of flapping-wing MAVs with a specific focus on insect-inspired wing design and fabrication, as well as sensing systems.This article is part of the themed issue ‘Moving in a moving medium: new perspectives on flight’.
机译:昆虫和鸟类大小的无人机-可以在自然和人为环境中进行自动飞行的微型飞行器(MAV)现在是一个活跃且高度集成的研究领域。 MAV通常在雷诺数为10 4 –10 5 或更低的状态下以低速运行,其中大多数昆虫,鸟类和蝙蝠飞行的动物都会飞行并遇到在产生足够的空气动力以保持空中飞行以及控制飞行自主性以实现复杂机动方面的非常规挑战。通过拍打翅膀为飞行提供动力并控制飞行的飞行昆虫,能够通过由机翼产生空气动力的集成系统,移动机翼的肌肉和调节从机翼输出的动力的控制系统,来产生复杂的气动力并进行精确,灵活的操纵。肌肉。在本文中,我们将从襟翼和柔性机翼的空气动力学,飞行动力学和稳定性,稳定和控制中的被动和主动机制以及襟翼的襟翼飞行等方面对生物启发飞行系统中生物力学的现状进行有选择的综述。不稳定的环境。我们进一步重点介绍了拍打翼MAV仿生技术的最新进展,特别侧重于以昆虫为灵感的机翼的设计和制造以及传感系统。本文是主题``在移动介质中移动:飞行的新视角''的一部分'。

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