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膝关节摆动相屈曲阻力影响到腿摆动的几个关键特征,这些特征对安全的股骨假体步态很重要。

Knee Swing Phase Flexion Resistance Affects Several Key Features of Leg Swing Important to Safe Transfemoral Prosthetic Gait.

出版信息

IEEE Trans Neural Syst Rehabil Eng. 2021;29:965-973. doi: 10.1109/TNSRE.2021.3082459. Epub 2021 Jun 3.

DOI:10.1109/TNSRE.2021.3082459
PMID:34018934
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8223905/
Abstract

We systematically investigate in-vivo the effect of increasing prosthetic knee flexion damping on key features of the swing phase of individuals with transfemoral amputation during walking. Five experienced prosthesis users walked using a prototype device in a motion capture laboratory. A range of interchangeable hydraulic rotary dampers was used to progressively modify swing phase flexion resistance in isolation. Toe clearance (TC; vertical distance toe to floor), effective leg length (ELL; distance hip to toe), and knee flexion angle during swing phase were computed, alongside the sensitivities of vertical toe position to angular displacements at the hip, knee and ankle. Key features of these profiles were compared across 5 damping conditions. With higher damping, knee extension occurred earlier in swing phase, promoting greater symmetry. However, with implications for toe catch, minimum TC reduced, and minimum TC and maximum ELL occurred earlier; temporally closer to mid-swing, when the limb must pass the stance limb. Further, TC became less sensitive to changes in hip flexion, suggesting a lesser ability to control toe clearance without employing proximal or contralateral compensations. There is a trade-off between key features related to gait safety when selecting an appropriate resistance for a mechanical prosthetic knee. In addition to highlighting broader implications surrounding swing phase damping selection for the optimization of mechanical knees, this work reveals design considerations that may be of utility in the formulation of control strategies for computerized devices.

摘要

我们系统地研究了在体内增加假肢膝关节弯曲阻尼对行走过程中股骨截肢患者摆动阶段关键特征的影响。五名经验丰富的假肢使用者在运动捕捉实验室中使用原型设备进行行走。使用一系列可互换的液压旋转阻尼器来单独逐步改变摆动阶段的弯曲阻力。计算了摆动阶段的脚趾间隙(TC;脚趾到地板的垂直距离)、有效腿长(ELL;臀部到脚趾的距离)和膝关节弯曲角度,以及垂直脚趾位置对髋关节、膝关节和踝关节角度位移的敏感性。在 5 种阻尼条件下比较了这些轮廓的关键特征。随着阻尼的增加,膝关节在摆动阶段更早地伸展,从而促进更大的对称性。然而,这可能会导致脚趾卡住,最小 TC 减小,最小 TC 和最大 ELL 更早出现;更接近中间摆动,此时肢体必须经过支撑肢体。此外,TC 对髋关节弯曲变化的敏感性降低,这表明在不采用近端或对侧补偿的情况下,控制脚趾间隙的能力降低。在选择机械假肢膝关节的适当阻力时,需要在与步态安全相关的关键特征之间进行权衡。除了突出围绕摆动阶段阻尼选择对机械膝关节优化的更广泛影响外,这项工作还揭示了设计考虑因素,这些因素可能对计算机控制策略的制定有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9489/8223905/8248fd4dc2b1/nihms-1711343-f0006.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9489/8223905/5fcebb847ed1/nihms-1711343-f0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9489/8223905/40d28eec3c97/nihms-1711343-f0002.jpg
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本文引用的文献

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J Neural Eng. 2018 Feb;15(1):016015. doi: 10.1088/1741-2552/aa92a8.
2
The effect of damping in prosthetic ankle and knee joints on the biomechanical outcomes: A literature review.假肢踝关节和膝关节的阻尼对生物力学结果的影响:一项文献综述。
Prosthet Orthot Int. 2017 Aug;41(4):336-344. doi: 10.1177/0309364616677651. Epub 2016 Dec 9.
3
Quantifying accommodation to prosthesis interventions in persons with lower limb loss.量化下肢缺失者对假肢干预的适应性。
Gait Posture. 2016 Oct;50:14-16. doi: 10.1016/j.gaitpost.2016.08.016. Epub 2016 Aug 16.
4
Relating minimum toe clearance to prospective, self-reported, trip-related stumbles in the community.将最小脚趾间隙与社区中预期的、自我报告的、与绊倒相关的跌倒相联系。
Prosthet Orthot Int. 2017 Aug;41(4):387-392. doi: 10.1177/0309364616650085. Epub 2016 Jun 8.
5
A Cyber Expert System for Auto-Tuning Powered Prosthesis Impedance Control Parameters.一种用于自动调整动力假肢阻抗控制参数的网络专家系统。
Ann Biomed Eng. 2016 May;44(5):1613-24. doi: 10.1007/s10439-015-1464-7. Epub 2015 Sep 25.
6
Transfemoral amputee recovery strategies following trips to their sound and prosthesis sides throughout swing phase.在摆动期向健全侧和假肢侧绊倒后经股截肢者的恢复策略。
J Neuroeng Rehabil. 2015 Sep 9;12:79. doi: 10.1186/s12984-015-0067-8.
7
The Effects of Prosthesis Inertial Properties on Prosthetic Knee Moment and Hip Energetics Required to Achieve Able-Bodied Kinematics.假肢惯性特性对实现健全人运动学所需的假肢膝关节力矩和髋关节能量学的影响。
IEEE Trans Neural Syst Rehabil Eng. 2016 Jul;24(7):754-63. doi: 10.1109/TNSRE.2015.2455054. Epub 2015 Jul 13.
8
Development of dynamic models of the Mauch prosthetic knee for prospective gait simulation.用于前瞻性步态模拟的毛赫假肢膝关节动力学模型的开发。
J Biomech. 2014 Sep 22;47(12):3178-84. doi: 10.1016/j.jbiomech.2014.06.011. Epub 2014 Jun 21.
9
Improving the gait performance of non-fluid-based swing-phase control mechanisms in transfemoral prostheses.提高股骨假体中基于非流体制动的摆动期控制机构的步态性能。
IEEE Trans Biomed Eng. 2011 Aug;58(8). doi: 10.1109/TBME.2011.2155059. Epub 2011 May 16.
10
Volitional control of a prosthetic knee using surface electromyography.使用表面肌电图控制假肢膝关节。
IEEE Trans Biomed Eng. 2011 Jan;58(1):144-51. doi: 10.1109/TBME.2010.2070840. Epub 2010 Aug 30.