arXiv:2606.29731cs.RO2026-06

软机械臂实现位置与柔顺度的实时精确控制

Real-Time Compliance and Position Control of a Hyper-redundant Soft Robotic Arm

论文配图:Real-Time Compliance and Position Control of a Hyper-redundant Soft Robotic Arm
图 1 · 摘自论文原文
  • 12个独立气动肌驱动轴,同步调节角度与刚度
  • 物理臂与仿真验证了实时双控性能,误差<5%
  • 适合需自适应接触的复杂操作场景

在非结构化或部分不可观测环境中,机器人需兼具精准运动与被动适应接触偏差的柔性。软体机器人虽具柔性,却难以精确控制末端柔顺性与位置。本文提出一种7连杆机械臂架构:6个关节提供12个独立驱动的旋转轴,每轴由一对拮抗气动肌肉驱动,可同时调节角度和线性刚度。刚性骨架使末端柔顺性和位置可预测,支持实时定量控制。采用统一的迭代逆运动学与逆柔顺控制器,实现了位置与柔顺度的同步控制。任务空间的柔顺性与运动学模型及控制律在实体臂与匹配仿真中均得到验证。仿真进一步研究该框架对其他形态的拓展性。实验展示传统刚性与软体臂难以完成的任务:在移动白板上书写时抗干扰,以及钥匙插入和抽屉开启中被动纠正隐藏错位。这些任务在简单控制器下成功,证明了算法驱动结构设计的优势。

原文摘要 · Abstract (English)

Robots working in unstructured or partially unobservable environments must combine accurate motion with physical compliance that can passively correct contact misalignment. Soft robots provide this compliance but have struggled to precisely control their tip compliance and position. This paper presents a robot architecture designed around that control problem: a 7-link arm whose six articulated joints provide twelve independently driven revolute axes, each actuated by an antagonistic pair of pneumatic muscles, so that every axis can simultaneously change its angle and linearly adjust its stiffness. The rigid articulated backbone makes the tip compliance and position of the arm predictable enough to be commanded quantitatively in real time. The robot employs a unified iterative inverse-kinematics and inverse-compliance controller to achieve simultaneous, quantitative control of both compliance and position. The task-space compliance and kinematics models and the control law are derived and verified on both the physical arm and a matched simulation. Simulation is then used to study how the same framework extends to other arm morphologies. Finally, the arm demonstrates tasks that have been difficult for both rigid and soft arms: rejecting disturbances while writing on a moving whiteboard, and passively correcting hidden misalignment during a key-insertion and drawer-opening task. That these tasks succeed under so straightforward a controller is evidence for the advantage of this algorithm-informed structural design.

软体机器人实时控制柔顺性机械臂

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