arXiv:2511.05426cs.RO2025-11

软体四轴飞行器实现敏捷、挤压和抗撞三者兼顾

Bioinspired Soft Quadrotors Jointly Unlock Agility, Squeezability, and Collision Resilience

  • 受生物结构启发,采用可变形软框架设计
  • 0.405公斤原型机达80公里/小时极速,抗撞力提升4倍
  • 适合复杂环境作业,尤其需要物理交互的场景

自然界飞行动物利用柔性翅膀实现多种飞行行为,包括高机动性、穿越狭窄空间和承受碰撞。传统四轴飞行器依赖刚性框架,虽能实现高机动性但限制了抗撞能力与挤压性,制约其在复杂环境中的表现。受生物体各向异性刚度和分布式质量-能量结构启发,本文提出柔韧四轴飞行器(FlexiQuad)设计方法,显著缓解此权衡。我们研制出重405克的原型机,其柔顺性比传统机型高出三个数量级,仍可实现超过80公里/小时的最高速度,线加速度与角加速度分别超过3g和300 rad/s²。分析表明,其加速度性能可达到刚性机型在推重比8以下的表现。同时,抗撞能力提升4倍,正面撞击5米/秒仍无损,擦碰时扰动力减少39倍;框架可完全压缩,实现宽度仅为其名义尺寸70%的缝隙通过。研究确定最优结构柔顺范围为0.006至0.77 N/mm,与自然飞行器翅膀相当,使20至3000克级别的模型同时具备敏捷性、挤压性和抗撞性。FlexiQuad拓展了复杂环境中悬停无人机的能力,实现稳健物理交互而不牺牲飞行性能。

原文摘要 · Abstract (English)

Natural flyers use soft wings to seamlessly enable a wide range of flight behaviours, including agile manoeuvres, squeezing through narrow passageways, and withstanding collisions. In contrast, conventional quadrotor designs rely on rigid frames that support agile flight but inherently limit collision resilience and squeezability, thereby constraining flight capabilities in cluttered environments. Inspired by the anisotropic stiffness and distributed mass-energy structures observed in biological organisms, we introduce FlexiQuad, a soft-frame quadrotor design approach that limits this trade-off. We demonstrate a 405-gram FlexiQuad prototype, three orders of magnitude more compliant than conventional quadrotors, yet capable of acrobatic manoeuvres with peak speeds above 80 km/h and linear and angular accelerations exceeding 3 g and 300 rad/s$^2$, respectively. Analysis demonstrates it can replicate accelerations of rigid counterparts up to a thrust-to-weight ratio of 8. Simultaneously, FlexiQuad exhibits fourfold higher collision resilience, surviving frontal impacts at 5 m/s without damage and reducing destabilising forces in glancing collisions by a factor of 39. Its frame can fully compress, enabling flight through gaps as narrow as 70% of its nominal width. Our analysis identifies an optimal structural softness range, from 0.006 to 0.77 N/mm, comparable to that of natural flyers' wings, whereby agility, squeezability, and collision resilience are jointly achieved for FlexiQuad models from 20 to 3000 grams. FlexiQuad expands hovering drone capabilities in complex environments, enabling robust physical interactions without compromising flight performance.

四轴飞行器软体机器人抗撞设计生物启发

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