首页> 外文期刊>Journal of Applied Biomechanics >Does Decreasing Below-Knee Prosthesis Pylon Longitudinal Stiffness Increase Prosthetic Limb Collision and Push-Off Work During Gait?
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Does Decreasing Below-Knee Prosthesis Pylon Longitudinal Stiffness Increase Prosthetic Limb Collision and Push-Off Work During Gait?

机译:降低膝盖以下假体的主塔纵向刚度是否会增加步态期间假肢的碰撞和推举工作?

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摘要

Investigations have begun to connect leg prosthesis mechanical properties and user outcomes to optimize prosthesis designs for maximizing mobility. To date, parametric studies have focused on prosthetic foot properties, but not explicitly longitudinal stiffness that is uniquely modified through shock-absorbing pylons. The linear spring function of these devices might affect work performed on the body center of mass during walking. This study observed the effects of different levels of pylon stiffness on individual limb work of unilateral below-knee prosthesis users walking at customary and fast speeds. Longitudinal stiffness reductions were associated with minimal increase in prosthetic limb collision and push-off work, but inconsistent changes in sound limb work. These small and variable changes in limb work did not suggest an improvement in mechanical economy due to reductions in stiffness. Fast walking generated greater overall center of mass work demands across stiffness conditions. Results indicate limb work asymmetry as the prosthetic limb experienced on average 61% and 36% of collision and push-off work, respectively, relative to the sound limb. A series-spring model to estimate residuum and pylon stiffness effects on prosthesis energy storage suggested that minimal changes to limb work may be due to influences of the residual limb which dominate the system response.
机译:研究已经开始将腿部假体的机械性能和用户结果联系起来,以优化假体设计以最大程度地提高活动性。迄今为止,参数研究集中在假肢的脚部特性上,但没有明确地通过吸收冲击的塔架来独特地改变纵向刚度。这些设备的线性弹簧功能可能会影响步行过程中在身体重心上执行的工作。这项研究观察了不同水平的塔架刚度对单侧膝关节以下假体使用者以惯常和较快速度行走的各个肢体工作的影响。纵向刚度的降低与假肢碰撞和下垂工作的最小增加相关,但健全肢体工作的变化不一致。肢体工作的这些细微而多变的变化并未表明由于刚度的降低而改善了机械经济性。快速走动在刚性条件下产生了更大的整体重心工作需求。结果表明肢体工作不对称,因为假肢相对于健全肢体分别经历平均61%和36%的碰撞和推举工作。用来估计残基和塔架刚度对假体能量存储影响的串联弹簧模型表明,肢体功的最小变化可能是由于支配系统响应的残余肢体的影响所致。

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