arXiv:2509.22002cs.RO2025-09中稿 · Fundamental Resear…被引 1

用单自由度设计出不自撞、省能的仿生机械腿

One-DoF Robotic Design of Overconstrained Limbs with Energy-Efficient, Self-Collision-Free Motion

  • 基于闭链机构的几何优化,实现单驱动下运动多样化
  • 全周期转动中零自碰撞,能耗降低显著
  • 适合仿生机器人、节能机械设计领域应用

尽管受自然启发的多自由度机械臂是主流方向,但单自由度设计仍具根本优势:结构简单、鲁棒性强、成本低、效率高。通过多连杆与旋转关节构成的闭链机构,可提升单自由度系统的运动多样性,但常受限于全周期运动中的自碰撞问题。本文提出一种新型计算方法,用于设计满足特定空间轨迹的单自由度过约束机械腿,在全周期旋转中实现能量高效、无自碰撞的运动。首先,建立基于连杆机构的广义几何优化问题,以确保无自碰撞;其次,通过优化轨迹相似性与动态相关指标,生成空间运动路径;最后,进一步优化过约束连杆的几何形状,使单驱动下运动平滑无碰撞。实验验证包括个性化自动装置和仿生六足机器人。所设计六足机器人在前向行走时展现出优异的能源效率。

原文摘要 · Abstract (English)

While it is expected to build robotic limbs with multiple degrees of freedom (DoF) inspired by nature, a single DoF design remains fundamental, providing benefits that include, but are not limited to, simplicity, robustness, cost-effectiveness, and efficiency. Mechanisms, especially those with multiple links and revolute joints connected in closed loops, play an enabling factor in introducing motion diversity for 1-DoF systems, which are usually constrained by self-collision during a full-cycle range of motion. This study presents a novel computational approach to designing one-degree-of-freedom (1-DoF) overconstrained robotic limbs for a desired spatial trajectory, while achieving energy-efficient, self-collision-free motion in full-cycle rotations. Firstly, we present the geometric optimization problem of linkage-based robotic limbs in a generalized formulation for self-collision-free design. Next, we formulate the spatial trajectory generation problem with the overconstrained linkages by optimizing the similarity and dynamic-related metrics. We further optimize the geometric shape of the overconstrained linkage to ensure smooth and collision-free motion driven by a single actuator. We validated our proposed method through various experiments, including personalized automata and bio-inspired hexapod robots. The resulting hexapod robot, featuring overconstrained robotic limbs, demonstrated outstanding energy efficiency during forward walking.

机器人设计单自由度过约束机构节能运动

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