arXiv:2508.05410cs.RO2025-08被引 1

用可自控的柔性模块构建能变形的无缆机器人

Computational Design and Fabrication of Modular Robots with Untethered Control

  • 用3D打印骨骼+液晶弹性体肌肉构成可模块化组装的柔性单元
  • 红外触发肌肉收缩,实现局部控制与整体形变,无需外部连线
  • 结合计算优化设计,支持多种形态变化和环境适应性运动

自然界生物通过分布式肌骨系统实现步态调整或身体形态变化。机器人领域长期面临难以模拟此能力的问题,现有软体机器人通常功能单一、无法按需改变形态,或仍依赖笨重的外接控制系统。为此,我们提出一种新型分布式驱动机器人的设计与控制框架。构建了集成3D打印骨骼与液态晶体弹性体(LCE)肌肉的轻量化模块,利用红外光触发的LCE杆实现局部、无缆控制,从而驱动整体结构变形。为充分探索设计空间,开发了两项计算工具:其一用于优化骨骼网络以达成多种目标形变;其二用于协同优化骨骼结构与运动步态,实现预期运动。通过多个样机验证了系统在复杂形变、多样控制策略及环境适应性方面的可行性。本系统融合模块化材料构建、无缆分布式控制与计算设计,推动机器人向类生命体能力迈进。

原文摘要 · Abstract (English)

Natural organisms utilize distributed actuation through their musculoskeletal systems to adapt their gait for traversing diverse terrains or to morph their bodies for varied tasks. A longstanding challenge in robotics is to emulate this capability of natural organisms, which has motivated the development of numerous soft robotic systems. However, such systems are generally optimized for a single functionality, lack the ability to change form or function on demand, or remain tethered to bulky control systems. To address these limitations, we present a framework for designing and controlling robots that utilize distributed actuation. We propose a novel building block that integrates 3D-printed bones with liquid crystal elastomer (LCE) muscles as lightweight actuators, enabling the modular assembly of musculoskeletal robots. We developed LCE rods that contract in response to infrared radiation, thereby providing localized, untethered control over the distributed skeletal network and producing global deformations of the robot. To fully capitalize on the extensive design space, we introduce two computational tools: one for optimizing the robot's skeletal graph to achieve multiple target deformations, and another for co-optimizing skeletal designs and control gaits to realize desired locomotion. We validate our framework by constructing several robots that demonstrate complex shape morphing, diverse control schemes, and environmental adaptability. Our system integrates advances in modular material building, untethered and distributed control, and computational design to introduce a new generation of robots that brings us closer to the capabilities of living organisms.

模块化机器人柔性执行器无缆控制形变重构

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