arXiv:2503.01338cs.RO2025-03被引 1

解决外骨骼穿戴偏差导致的不适与灵活性下降问题。

Flexible Exoskeleton Control Based on Binding Alignment Strategy and Full-arm Coordination Mechanism

  • 通过力成分分类与绑定对齐策略减少穿戴误差影响。
  • 提出全臂协同机制,提升高速运动时的控制柔顺性。
  • 适合康复、远程操控等需要高适应性的外骨骼场景。

在康复、动力辅助及遥操作外骨骼中,人体与外骨骼通过绑带连接是常见配置。然而,绑带松紧不确定性和穿戴偏差会影响外骨骼的灵活性与舒适性,尤其在高速运动时更为显著。为此,本文提出一种基于绑定对齐策略与全臂协同机制的柔性外骨骼控制方法。首先分析了因穿戴偏移引发的交互力来源,并将交互力数据分为主要、辅助、协调与冗余四类。随后提出绑定对齐策略(BAS),通过融合不同力成分降低穿戴干扰。进一步提出全臂协同机制(FCM),针对关节导向与目标导向两种手臂运动意图,设计算法区分意图以解决力成分冲突问题。最后,在全臂外骨骼上开展多维度实验,涵盖灵活性、适应性、精度、速度与疲劳表现,验证了该控制框架的有效性。

原文摘要 · Abstract (English)

In rehabilitation, powered, and teleoperation exoskeletons, connecting the human body to the exoskeleton through binding attachments is a common configuration. However, the uncertainty of the tightness and the donning deviation of the binding attachments will affect the flexibility and comfort of the exoskeletons, especially during high-speed movement. To address this challenge, this paper presents a flexible exoskeleton control approach with binding alignment and full-arm coordination. Firstly, the sources of the force interaction caused by donning offsets are analyzed, based on which the interactive force data is classified into the major, assistant, coordination, and redundant component categories. Then, a binding alignment strategy (BAS) is proposed to reduce the donning disturbances by combining different force data. Furthermore, we propose a full-arm coordination mechanism (FCM) that focuses on two modes of arm movement intent, joint-oriented and target-oriented, to improve the flexible performance of the whole exoskeleton control during high-speed motion. In this method, we propose an algorithm to distinguish the two intentions to resolve the conflict issue of the force component. Finally, a series of experiments covering various aspects of exoskeleton performance (flexibility, adaptability, accuracy, speed, and fatigue) were conducted to demonstrate the benefits of our control framework in our full-arm exoskeleton.

外骨骼柔性控制人机协同

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