arXiv:2602.18330cs.RO2026-02

用螺旋形结构实现软机器人快速往复与非往复运动

Tendon-Driven Reciprocating and Non-Reciprocating Motion via Snapping Metabeams

  • 通过调整边界约束控制螺旋金属梁的失稳跳变,实现可编程运动
  • 驱动鳍每0.4秒前进32毫米,速度达81毫米/秒(0.4体长/秒)
  • 适合需要高速、低功耗驱动的软体机器人设计

跳跃梁通过非线性失稳实现快速几何形态转换,为软体机器人提供高效运动机制。本研究开发了一种基于螺旋形元梁的腱驱动机构,利用该原理实现往复与非往复运动。结构采用熔融沉积成型技术,以聚乳酸(PLA)材料制造,并在不同边界条件下进行实验测试,分析其非线性行为。结果表明,临界力与稳定性仅通过调节边界约束即可调控。螺旋结构即使在较刚性的PLA材料下仍能实现大范围可逆变形,提供了一种简单可控的跳跃设计思路。该机构被集成于游泳机器人中,腱驱动鳍表现出两种驱动模式:往复与非往复运动。后者实现高效推进,每0.4秒周期前进约32毫米(约81毫米/秒,相当于0.4体长/秒)。本研究展示了几何驱动跳跃结构在软体机器人中高效、可编程驱动的潜力。

原文摘要 · Abstract (English)

Snapping beams enable rapid geometric transitions through nonlinear instability, offering an efficient means of generating motion in soft robotic systems. In this study, a tendon-driven mechanism consisting of spiral-based metabeams was developed to exploit this principle for producing both reciprocating and non-reciprocating motion. The snapping structures were fabricated using fused deposition modeling with polylactic acid (PLA) and experimentally tested under different boundary conditions to analyze their nonlinear behavior. The results show that the mechanical characteristics, including critical forces and stability, can be tuned solely by adjusting the boundary constraints. The spiral geometry allows large reversible deformation even when made from a relatively stiff material such as PLA, providing a straightforward design concept for controllable snapping behavior. The developed mechanism was further integrated into a swimming robot, where tendon-driven fins exhibited two distinct actuation modes: reciprocating and non-reciprocating motion. The latter enabled efficient propulsion, producing a forward displacement of about 32 mm per 0.4 s cycle ($\approx$ 81 mm/s, equivalent to 0.4 body lengths per second). This study highlights the potential of geometry-driven snapping structures for efficient and programmable actuation in soft robotic systems.

软体机器人跳跃结构腱驱动运动控制

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