通过主动调节刚度提升柔性机器人的抗载能力与定位精度。
Active Stiffness Control of a Supportive Continuum Robot
- 基于几何应变模型,将闭环结构动态投影至约束一致运动子空间。
- 实验与仿真显示,刚度增益提高可减少负载导致的末端偏移。
- 适合需精准抗扰的柔性机器人操作场景,如医疗手术辅助。
支撑式连续体机器人(SCRs)通过机械耦合增强操作臂的承载能力,但其被动刚度由结构决定,无法在线调节以适应不同负载或交互力。因此需要主动刚度控制来调节负载响应并保持定位精度。同时,闭环结构引入运动学约束,使任务空间调控和刚度控制复杂化。本文提出一种基于腱驱动的SCR主动任务空间刚度控制框架。利用现有几何可变应变模型描述闭环动力学,并将其投影到约束一致的运动子空间。设计投影滑模控制器,在保持约束条件下调节操作臂末端位置,通过李雅普诺夫分析证明闭环稳定性。位置调节完成后,通过位置误差反馈引入虚拟笛卡尔弹簧,实现主动表观刚度,塑造力-位移响应。框架在仿真中验证,并在施加外部载荷及不同期望构型下进行实验验证。结果表明,增大指令刚度增益可降低负载引起的末端偏移,提升定向表观刚度,从而增强抗载能力和定位鲁棒性。
原文摘要 · Abstract (English)
Supportive continuum robots (SCRs) enhance the load-bearing capability of an operative continuum robot by mechanically coupling it with a supportive arm. However, their passive stiffness is determined by the mechanical configuration and cannot be adjusted online for varying payloads or interaction forces. Active stiffness control is therefore needed to regulate the load response and maintain positioning accuracy. Meanwhile, the closed-chain structure introduces kinematic constraints that complicate task-space regulation and stiffness control. This paper presents an active task-space stiffness control framework for a tendon-driven SCR. An existing geometric variable strain model describes the closed-chain dynamics, which are projected onto the constraint-consistent motion subspace. A projected sliding mode controller regulates the operative arm tip while preserving the constraints, and closed-loop stability is established through Lyapunov analysis. After position regulation, active apparent stiffness is introduced through a virtual Cartesian spring based on position-error feedback to shape the force--displacement response. The framework is evaluated in simulation and experimentally validated under prescribed external loads and different desired configurations. Results show that increasing the commanded stiffness gain reduces load-induced tip deflection and increases apparent directional stiffness, thereby improving load resistance and positioning robustness under external loading.
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