通过协同设计实现微创手术机器人实时感知与控制
Capstan-driven Continuum Surgical Robot: Design, Modeling, and Perception

- 在电机支架中加入柔性元件,非侵入式测量缆绳张力
- 提出多体短粗梁模型,实现实时形变与受力估算
- 适合需要高精度感知的微创手术机器人研发者
形状与力感知长期制约紧凑型卷筒驱动连续体手术机器人的发展,主要难题在于难以获取密闭卷筒结构内缆绳张力信息。本文提出一种融合设计-建模-感知的协同方法:在驱动系统电机支架中引入柔性元件,利用其微变形响应缆绳反作用力,实现不占空间的实时张力测量。针对空间缆绳布局带来的非标准关节配置导致的建模复杂性,提出基于多体短粗梁模型的并行计算框架,可捕捉短梁段剪切效应及多缆协同作用,同时保证实时性能。在此基础上,通过集成近端多轴力/力矩传感器作为额外测量锚点,实现稳定形状与力感知。基于该框架,研制出单段与双段卷筒驱动连续体机器人。实验验证了框架在单、双段机器人中的有效性,实现了指尖位姿实时估计及接触力与位置感知。该框架在不破坏紧凑卷筒结构的前提下实现缆绳张力反馈,使卷筒驱动连续体手术机器人具备集成感知能力。
原文摘要 · Abstract (English)
Shape and force sensing have long been critical bottlenecks in the development of compact capstan-driven continuum surgical robots, primarily due to the difficulty of obtaining cable tension information within the confined capstan assembly. To overcome these challenges, this paper presents an integrated design-modeling-sensing approach based on the concept of actuation-perception co-design. A compliant element is introduced into the motor mounting bracket of the drive system, enabling micro-deformation under the cable reaction force and thereby allowing real-time cable tension measurement without occupying the compact capstan space. To address the modeling complexity arising from unconventional joint configurations introduced by the spatial cable routing strategy, a parallel computation framework based on a multibody short-thick-beam model is proposed, which captures shear effects in short beam segments and synergistic multi-cable interactions while achieving real-time performance. Building on this framework, stable shape and force sensing is achieved by incorporating a proximal multi-axis force/torque sensor as an additional measurement anchor. Following this design-modeling-sensing framework, capstan-driven continuum surgical robots with single- and dual-segment configurations are developed. Experimental results validate the proposed framework in both single- and dual-segment continuum robots, demonstrating real-time tip pose estimation together with contact force and location perception. By enabling cable tension feedback without compromising the compact capstan architecture, the proposed framework makes integrated perception feasible for capstan-driven continuum surgical robots.
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