arXiv:2607.18950cs.RO2026-07

设计可被动旋转的欠驱动手指,提升机器人手抓握灵活性与稳定性。

Design and stability analysis of an underactuated hand with passively rotating fingers

论文配图:Design and stability analysis of an underactuated hand with passively rotating fingers
图 1 · 摘自论文原文
  • 采用基座回转关节实现手指被动空间旋转,支持多形态抓握。
  • 基于接触力矩的稳定准则确保抓握不脱手,实验验证多种抓握方式。
  • 单电机驱动多指协同,适合农业、物流等复杂场景应用。

本文提出一种具备空间运动能力的欠驱动机械手指新设计及其稳定性分析,旨在提升机器人手的抓握灵巧性。手指基座设有一回转关节,实现被动空间旋转,支持圆柱形和球形抓握。每根手指仅含两个指节,简化运动学结构,同时兼顾精密与包络式抓握。通过分析接触力在手指基座关节产生的力矩,建立稳定性判据,确保抓握可靠并防止物体脱落。研究还引入差速机构,将单一驱动力矩分配至多个手指,实现自适应协调运动,减少预抓取调整,利用被动特性实现自主适应。理论成果通过全机械原型实验验证,成功完成圆柱形、球形、平行及包络式抓握。该设计在单个手指内及多指间均实现欠驱动,显著降低机械复杂度、成本与控制需求,同时保持功能适应性。本工作推动了适用于农业、物流、辅助技术及垃圾分拣等场景的柔顺机器人手发展。未来将聚焦自动化驱动与控制策略优化,进一步提升抓握稳定性与精度,为非结构化环境下的自主操作铺路。

原文摘要 · Abstract (English)

This paper presents an innovative design and stability analysis of an underactuated robotic finger with spatial mobility, designed to enhance gripping dexterity in robotic hands. The finger architecture incorporates a revolute joint at its base, enabling passive spatial rotation that facilitates both cylindrical and spherical grasping. With only two phalanges per finger, the design simplifies kinematic complexity while supporting precision and enveloping grasps. Stability criteria, based on the moment at the finger base joint induced by contact forces, are introduced to ensure reliable object gripping and prevent ejection during manipulation. The study also examines a differential mechanism that distributes a single actuation torque across multiple fingers, allowing adaptive and coordinated motion. This mechanism enhances the hand's ability to grasp diverse object shapes with minimal pre-grasp adjustments, leveraging passivity for autonomous adaptation. Theoretical findings are experimentally validated using a fully mechanical prototype, demonstrating versatility in performing cylindrical, spherical, parallel, and enveloping grasps. The integration of underactuation-both within individual fingers and among multiple fingers-reduces mechanical complexity, cost, and control demands while preserving functional adaptability. This work advances the development of compliant robotic hands suitable for applications requiring dexterity and robustness, such as agricultural robotics, logistics, assistive technologies, and waste sorting. Future research will focus on automating actuation and refining control strategies to further improve grasp stability and precision, paving the way for autonomous manipulation in unstructured environments.

机器人手欠驱动抓握稳定性柔性执行

Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。