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首页> 外文期刊>Applied bionics and biomechanics >Development of a Robotic Assembly for Analyzing the Instantaneous Axis of Rotation of the Foot Ankle Complex
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Development of a Robotic Assembly for Analyzing the Instantaneous Axis of Rotation of the Foot Ankle Complex

机译:用于分析脚踝复合物的瞬时旋转轴的机器人组件的开发

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摘要

Ankle instantaneous axis of rotation (IAR) measurements represent a more complete parameter for characterizing joint motion. However, few studies have implemented this measurement to study normal, injured, or pathological foot ankle biomechanics. A novel testing protocol was developed to simulate aspects of in vivo foot ankle mechanics during mid-stance gait in a human cadaveric specimen. A lower leg was mounted in a robotic testing platform with the tibia upright and foot flat on the baseplate. Axial tibia loads (ATLs) were controlled as a function of a vertical ground reaction force (vGRF) set at half body weight (356 N) and a 50% vGRF (178 N) Achilles tendon load. Two specimens were repetitively loaded over 10 degrees of dorsiflexion and 20 degrees of plantar flexion. Platform axes were controlled within 2 microns and 0.008 degrees resulting in ATL measurements within +/- 2 N of target conditions. Mean ATLs and IAR values were not significantly different between cycles of motion, but IAR values were significantly different between dorsiflexion and plantar flexion. A linear regression analysis showed no significant differences between slopes of plantar flexion paths. The customized robotic platform and advanced testing protocol produced repeatable and accurate measurements of the IAR, useful for assessing foot ankle biomechanics under different loading scenarios and foot conditions.
机译:脚踝瞬时旋转轴(IAR)测量表示用于表征关节运动的更完整的参数。然而,很少有研究已经实施了这种测量,以研究正常,受伤或病理脚踝生物力学。开发了一种新的测试方案,以模拟人类尸体标本中姿态步态期间体内脚踝力学的方面。小腿安装在机器人测试平台中,胫骨直立,脚踏板上。将轴向胫骨载荷(ATL)控制为设定在半体重(356n)的垂直地反作用力(VGRF)和50%VGRF(178N)Achilles肌腱载荷的函数。两种样品重复装载超过10度的背裂和20度的跖屈。平台轴控制在2微米内,0.008度,导致目标条件的+/- 2 n内的ATL测量。平均ATL和IAR值在运动循环之间没有显着差异,但在背裂和跖屈之间,IAR值显着差异。线性回归分析显示跖屈曲路径斜坡之间没有显着差异。定制的机器人平台和高级测试协议产生了IAR的可重复和准确的测量,可用于评估不同负载方案和脚状况的脚踝生物力学。

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  • 来源
    《Applied bionics and biomechanics 》 |2016年第2016期| 共9页
  • 作者单位

    Univ Tennessee Hlth Sci Ctr Dept Orthopaed Surg &

    Biomed Engn BioRobot Lab 956 Court Ave Suite E226 Memphis TN 38163 USA;

    Univ Tennessee Hlth Sci Ctr Dept Orthopaed Surg &

    Biomed Engn BioRobot Lab 956 Court Ave Suite E226 Memphis TN 38163 USA;

    Univ Tennessee Hlth Sci Ctr Dept Orthopaed Surg &

    Biomed Engn BioRobot Lab 956 Court Ave Suite E226 Memphis TN 38163 USA;

    Univ Tennessee Hlth Sci Ctr Dept Orthopaed Surg &

    Biomed Engn BioRobot Lab 956 Court Ave Suite E226 Memphis TN 38163 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 仿生学 ;
  • 关键词

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