用物理模型实现气动软执行器的实时高精度位置控制
Task-space model-based control of pneumatic soft actuators

- 基于非最小坐标弹性杆模型构建动态框架,兼顾力学分布与计算效率
- 实验中实现1.5-2.3毫米的轨迹误差,最高运动速度达37厘米/秒
- 适用于多种结构、少传感器场景,适合机器人灵巧操作研究者
软执行器可实现灵巧且柔顺的交互,但因强非线性、分布变形及动力学不确定性,闭环任务空间控制仍具挑战。本文提出一种基于非最小坐标离散弹性杆模型(绝对坐标下带完整约束)的实时动态模型反馈与估计框架。该结构在保持分布式力学特性的同时,通过稀疏系统矩阵实现计算高效,支持最多10段离散杆的实时控制。结合准静态前馈逆模型、任务空间PI控制器及融合测量残差作为虚拟力的动态观测器,实现从稀疏传感中完成全状态估计。在三种不同几何结构的平面气动软执行器上验证,涵盖绘制0-9数字(末端速度3-18毫米/秒)、周期运动跟踪(最高37厘米/秒)、跨平台泛化、低传感条件和实时用户参考输入等五项任务。结果表明,本方法在精确运动中实现1.5-2.3毫米均方根误差,在1-2赫兹频率下为5.5-12.4毫米,证明结构化的非最小动态模型可实现平面气动软执行器在自由空间中的实时、高精度、中带宽任务空间控制。
原文摘要 · Abstract (English)
Soft actuators enable dexterous and compliant interaction, but closed-loop task-space control remains challenging due to strong nonlinearities, distributed deformation, and uncertainty in their dynamics. This paper presents a real-time dynamic-model-based task-space feedback and estimation framework based on a non-minimal coordinate discrete elastic rod model formulated in absolute coordinates with holonomic constraints. The resulting structure preserves distributed mechanics while maintaining computational efficiency through sparse system matrices, enabling real-time control with up to 10 discretized rods. A quasi-static feedforward inverse model is combined with a task-space PI controller and a dynamic observer that fuses measurement residuals as virtual forces, enabling full-state estimation from sparse sensing. The approach is experimentally validated on three planar pneumatic soft actuators with varying geometries. Across five tasks, including drawing the digits 0-9 across the workspace (3-18 mm/s tip speed), tracking periodic motion (up to 37 cm/s), cross-platform generalization, reduced sensing conditions, and real-time user-defined references, our method achieves 1.5-2.3 mm root mean square error (RMSE) for precision motions and 5.5-12.4 mm RMSE at 1-2 Hz. Results demonstrate that structured, non-minimal dynamic models can enable real-time, high-precision, moderate-bandwidth task-space control of planar soft pneumatic actuators in free space.
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