首页> 外文期刊>Journal of the Royal Society Interface >An insect-inspired collapsible wing hinge dampens collision-induced body rotation rates in a microrobot
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An insect-inspired collapsible wing hinge dampens collision-induced body rotation rates in a microrobot

机译:一种昆虫激发的可折叠翼铰链抑制微型机器中的碰撞诱导的身体旋转速率

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摘要

Some flying insects frequently collide their wingtips with obstacles, and the next generation of insect-inspired micro air vehicles will inevitably face similar wing collision risks when they are deployed in real-world environments. Wasp wings feature a flexible resilin joint called a 'costal break' that allows the wingtip to reversibly collapse upon collision, helping to mitigate wing damage over repeated collisions. However, the costal break may provide additional benefits beyond reducing wing wear. We tested the hypothesis that a collapsible wing tip can also dampen sudden and unpredictable body rotations caused by collisions. We designed a wing buckle hinge for an insect-scale microrobot, inspired by the costal break in wasp wings, and performed wing collision tests in a yaw-based magnetic tether system. We found that a collapsible wing tip reduced collision-induced airframe yaw rates by approximately 40% compared to a stiff wing, and that the effect was most pronounced for collisions that occurred early in the wing stroke. Our results suggest that a collapsible wingtip may simplify flight control requirements in both insects and insect-scale microrobots. We also introduce a scalable hinge design for engineering applications that recreates the nonlinear strain-weakening behaviour of a costal break.
机译:一些飞行昆虫经常碰撞他们的翅膀,随着障碍物碰撞,而下一代昆虫风险的微型航空器将在现实世界环境中部署时不可避免地面对类似的翼碰碰撞风险。 WASP翅膀采用柔性Resilin关节,称为“昂贵突破”,允许WingTip在碰撞时可逆地崩溃,有助于减轻反复碰撞的翼损伤。然而,昂贵的休息可能提供超越减少翼磨的额外益处。我们测试了可折叠翼尖的假设,也可以抑制由碰撞引起的突然和不可预测的身体旋转。我们设计了一种用于昆虫鳞片的翼片铰链,受到黄蜂翼的昂贵突破的启发,并在横摆的磁系系系统中进行了机翼碰撞试验。我们发现,与僵硬的翼相比,可折叠翼尖减小了碰撞诱导的机身偏航率约40%,并且对机翼行程早期发生的碰撞是最明显的。我们的结果表明,可折叠的WingTip可以简化昆虫和昆虫鳞片微机器中的飞行控制要求。我们还介绍了一种可伸缩的铰链设计,用于工程应用,可以重现昂贵突破的非线性应变弱化行为。

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