arXiv:2605.02710cs.ROnlin.AO2026-05

仿生张拉整体拐杖通过自预紧柔顺模块,提升行走稳定性与舒适性。

Tensegrity crutches with compliance from a pre-stressed self-tensile module improve ground reaction force profiles, speed, effort, comfort, and perceived stability

  • 采用自预紧双单元张拉整体结构实现轴向柔顺性
  • 相比刚性拐杖降低峰值载荷率,改善使用体验
  • 适合需要长期使用助行器的用户,尤其关注舒适与安全

美国有六百万人使用拐杖作为移动辅助工具。传统刚性设计缺乏轴向柔顺性,限制感知反馈并导致上肢二次损伤;弹簧式设计虽具柔顺性但可能牺牲稳定性。本文设计了一种仿生张拉整体拐杖,其末端模块为自预紧的双细胞张拉整体结构,旨在实现优良力学性能。通过轴向加载测试、地面直线与转弯行走实验及人体试验(18名健康年轻志愿者,无近期下肢损伤),比较该设计与市售刚性及弹簧式拐杖的差异。结果显示,与刚性拐杖相比,弹簧式和张拉整体设计均降低了峰值载荷率;张拉整体拐杖显著改善了使用者的用力感、舒适度、疼痛感与易用性,而弹簧式拐杖则降低了感知稳定性与行走速度。结论表明,仿生张拉整体拐杖是现有设计的整体优化。仿真与机械测试显示,非线性刚度、地面跟随性与力反馈是促成改善的关键力学特性。

原文摘要 · Abstract (English)

Purpose: Six million people use crutches as mobile aids in the US. Rigid designs with no axial mobility limit sensory feedback and lead to secondary injury on the upper joints. Spring-loaded designs offer compliance but may compromise stability. We designed a biologically inspired tensegrity crutch with a compliant module aiming to achieve favorable mechanical properties. The terminal module was a pre-stressed self-tensile two-cell tensegrity structure. We compared the tensegrity crutch to commercial rigid and spring-loaded crutches in mechanical tests using axial loading, in overground straight and turning walking, and in participant experience. Methods: In human trials, healthy young adults (N=18) with no recent lower-body injury performed straight walking and turning trials at a comfortable self-selected pace. A knee blocker simulated unilateral injury of the dominant leg. After using each type of crutch, participants reported their perceived levels of effort, comfort, pain, stability, and usability. Results: Compared to the rigid design, both spring-loaded and tensegrity conditions reduced peak loading rates. The tensegrity design improved effort, comfort, pain, and usability. Spring-loaded crutches reduced perceived stability and walking speed. Conclusion: The biologically inspired tensegrity crutches were an overall improvement to existing designs. Simulations and mechanical testing suggest that nonlinear stiffness, ground-following, and force feedback are among the beneficial mechanical properties that underlie this improvement.

康复工程仿生设计张拉整体助行器

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