首页> 外文OA文献 >Effects of Prosthesis Mass on Hip Energetics, Prosthetic Knee Torque, and Prosthetic Knee Stiffness and Damping Parameters Required for Transfemoral Amputees to Walk With Normative Kinematics
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Effects of Prosthesis Mass on Hip Energetics, Prosthetic Knee Torque, and Prosthetic Knee Stiffness and Damping Parameters Required for Transfemoral Amputees to Walk With Normative Kinematics

机译:假体质量对经股动脉截肢者行走的髋关节能量,假体膝关节力矩和假肢膝关节硬度和阻尼参数的影响规范运动学

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摘要

We quantify how the hip energetics and knee torque required for an above-knee prosthesis user to walk with the kinematics of able-bodied humans vary with the inertial properties of the prosthesis. We also select and optimize passive mechanical components for a prosthetic knee to accurately reproduce the required knee torque.Previous theoretical studies have typically investigated the effects of prosthesis inertial properties on energetic parameters by modifying both mass and mass distribution of the prosthesis and computing kinetic and energetic parameters only during swing. Using inverse dynamics, we determined the effects of independently modifying mass and mass distribution of the prosthesis, and we computed parameters during both stance and swing. Results showed that reducing prosthesis mass significantly affected hip energetics, whereas reducing mass distribution did not. Reducing prosthesis mass to 25% of the mass of a physiological leg decreased peak stance hip power by 26%, average swing hip power by 74%, and absolute hip work over the gait cycle by 22%.Previous studies have also typically optimized prosthetic knee components to reproduce the knee torque generated by able-bodied humans walking with normative kinematics. However, because the prosthetic leg of an above-knee prosthesis user weighs significantly less than a physiological leg, the knee torque required for above-knee prosthesis users to walk with these kinematics may be significantly different. Again using inverse dynamics, it was found that changes in prosthesis mass and mass distribution significantly affected this required torque. Reducing the mass of the prosthesis to 25% of the mass of the physiological leg increased peak stance torque by 43% and decreased peak swing torque by 76%.The knee power required for an above-knee prosthesis user to walk with the kinematics of able-bodied humans was analyzed to select passive mechanical components for the prosthetic knee. The coefficients of the components were then optimized to replicate the torque required to walk with the kinematics of able-bodied humans. A prosthetic knee containing a single linear spring and two constant-force dampers was found to accurately replicate the targeted torque (R[superscript 2]=0.90 for a typical prosthesis). Optimal spring coefficients were found to be relatively insensitive to mass alterations of the prosthetic leg, but optimal damping coefficients were sensitive. In particular, as the masses of the segments of the prosthetic leg were altered between 25% and 100% of able-bodied values, the optimal damping coefficient of the second damper varied by 330%, with foot mass alterations having the greatest effect on its value.
机译:我们量化了膝上假体使用者与健全人的运动学一起行走所需的髋部能量和膝部扭矩如何随假体的惯性特性而变化。我们还选择并优化了假肢膝关节的被动机械组件,以准确地再现所需的膝盖扭矩。以前的理论研究通常通过修改假肢的质量和质量分布并计算动力学和能量来研究假肢惯性对能量参数的影响。参数仅在摆动期间。使用逆动力学,我们确定了独立修改假体质量和质量分布的效果,并在站立和挥杆过程中计算了参数。结果表明,减少假体质量显着影响髋部能量,而减少质量分布却没有。将假体质量减少到生理腿质量的25%,可以使站立姿势的峰值髋部力量降低26%,平均挥杆髋部力量降低74%,步态周期内的绝对髋部力量降低22%。以前的研究通常还优化了假肢膝盖组件,以重塑健壮的人体通过规范运动学原理产生的膝部扭矩。但是,由于膝上假肢使用者的假肢重量显着小于生理腿,因此,膝上假肢使用者通过这些运动学走路所需的膝关节扭矩可能会大不相同。再次使用逆动力学,发现假体质量和质量分布的变化显着影响了所需的扭矩。将假体的质量减少到生理腿质量的25%,可使峰值姿态扭矩增加43%,并使峰值挥杆扭矩减少76%。膝上假肢使用者在运动能力较弱的情况下行走所需的膝盖力量对身体健全的人进行了分析,以选择假肢膝关节的被动机械组件。然后优化组件的系数,以复制身体健壮的人体运动所需的扭矩。发现包含单个线性弹簧和两个恒力阻尼器的假肢可精确复制目标扭矩(典型假体的R [上标2] = 0.90)。发现最佳弹簧系数对假肢腿的质量变化相对不敏感,但最佳阻尼系数敏感。尤其是,当假腿段的质量在健全值的25%到100%之间变化时,第二个阻尼器的最佳阻尼系数变化了330%,而脚质量的变化对其最大影响最大。值。

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