arXiv:2412.02389cs.ROcs.SY2024-12被引 40

仿鸟多用途腿让机器人跳起飞行,又快又省电。

Fast ground-to-air transition with avian-inspired multifunctional legs

  • 用仿鸟多用途腿实现跳跃起飞、地面行走和越障
  • 跳跃起飞比纯螺旋桨起飞速度快且更节能
  • 适合复杂地形的自主飞行机器人研发

大多数鸟类能无缝切换空中与陆地环境。前肢演化为翅膀用于飞行,后肢则兼具行走、跳跃、腾空等多种功能,其中跳跃助飞是关键过渡方式。这启发工程师追求类似多模态运动能力的飞行机器人,以拓展其在多样化环境中的应用。然而,如何在不同步态(如行走与跳跃)间平衡机械复杂性与多功能性仍面临挑战,尤其在保持轻量化以利于飞行的前提下。本文提出RAVEN(Robotic Avian-inspired Vehicle for multiple ENvironments)机器人,通过仿鸟多用途腿实现快速跳跃起飞、地面行走及越障,模仿鸟类的多模态运动。实验表明,跳跃助飞显著提升初始起飞速度,且能量效率高于纯螺旋桨起飞。分析显示,不同运动策略的鸟类在腿部与身体质量分布上存在明显权衡:适应多模态运动的陆生鸟类更倾向增加腿部质量。该设计使传统固定翼飞行器可在复杂地形中实现自主起飞与多模态移动。

原文摘要 · Abstract (English)

Most birds can navigate seamlessly between aerial and terrestrial environments. Whereas the forelimbs evolved into wings primarily for flight, the hindlimbs serve diverse functions such as walking, hopping, and leaping, and jumping take-off for transitions into flight. These capabilities have inspired engineers to aim for similar multi-modality in aerial robots, expanding their range of applications across diverse environments. However, challenges remain in reproducing multi-modal locomotion, across gaits with distinct kinematics and propulsive characteristics, such as walking and jumping, while preserving lightweight mass for flight. This tradeoff between mechanical complexity and versatility limits most existing aerial robots to only one additional locomotor mode. Here, we overcome the complexity-versatility tradeoff with RAVEN (Robotic Avian-inspired Vehicle for multiple ENvironments), which uses its bird-inspired multi-functional legs to jump rapidly into flight, walk on ground and hop over obstacles and gaps similar to the multi-modal locomotion of birds. We show that jumping for take-off contributes substantially to initial flight take-off speed and, remarkably, that it is more energy-efficient than solely propeller-based take-off. Our analysis suggests an important tradeoff in mass distribution between legs and body among birds adapted for different locomotor strategies, with greater investment in leg mass among terrestrial birds with multi-modal gait demands. Multi-functional robot legs expand opportunities to deploy traditional fixed-wing aircraft in complex terrains through autonomous take-offs and multi-modal gaits.

仿生机器人多模态运动跳跃起飞轻量化设计

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