arXiv:2409.13165cs.RO2024-09被引 2

提出可实现复杂运动的腱驱动连续机器人新设计与建模方法。

Universal-jointed Tendon-driven Continuum Robot: Design, Kinematic Modeling, and Locomotion in Narrow Tubes

  • 采用滑膜万向节模块实现机械离散化设计,拓展腱路由可能性。
  • 构建基于优化的运动学模型,支持多根任意布线腱的协同控制。
  • 验证了在狭小管道中仿生爬行的应用潜力,适合机器人设计参考。

腱驱动连续机器人(TDCRs)因其柔顺性、可微型化及独特形状,在受限空间应用中具有潜力。非平行腱路由设计能提升自由度、工作空间和灵巧性,但现有研究多聚焦于平行腱以获得简化的常曲率运动学,限制了设计多样性。我们认为这主要源于缺乏仅依赖腱几何与位移即可估算形变的通用运动学模型。基于科瑟拉杆的模型虽可处理复杂腱路由,但需精确张力测量和大量系统辨识,不适用于设计阶段。此前的建模尝试仅限于单腱或垂直平面腱的简单情形,且模型与硬件脱节,难以满足制造约束。本文第一贡献是提出一种基于滑膜万向节模块的新型TDCR设计,提供可实现的机械离散化设计空间。第二贡献是建立并验证了一种基于优化的运动学模型,可处理多根任意布线腱的驱动。最后,展示了一款用于步态爬行的TDCR实例,证明该方法在统一模型驱动设计流程中的潜力。

原文摘要 · Abstract (English)

Tendon-driven Continuum Robots (TDCRs) are promising candidates for applications in confined spaces due to their unique shape, compliance, and miniaturization capability. Non-parallel tendon routing for TDCRs have shown definite advantages including segments with higher degrees of freedom, larger workspace and higher dexterity. However, most works have focused on parallel tendons to achieve constant-curvature shapes, which yields analytically simple kinematics but overly restricts the design possibilities. We believe this under-utilization of general tendon routing can be attributed to the lack of a general kinematic model that estimates shape from only tendon geometry and displacements. Cosserat rod-based models are capable of modeling general tendon routing, but they require accurate tendon tension measurements and extensive system identification, hindering their usability for design purposes. Recent attempts in developing a kinematic model are limited to simple scenarios like actuation with a single tendon or tendons on perpendicular planes. Moreover, model formulations are often disconnected from hardware, making designs challenging to build under manufacturing constraints. Our first contribution is a novel design for TDCRs based on a synovial universal joint module, which provides a mechanically discretized and feasible design space. Based on the design, our second contribution is the formulation and evaluation of an optimization-based kinematic model, capable of handling actuation of multiple general routed tendons. Lastly, we present an example application of a TDCR designed for gaited locomotion, demonstrating our method's potential for an unified model-based design pipeline.

机器人设计连续体运动学建模腱驱动

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