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Mechanical energy profiles of the combined ankle-foot system in normal gait: Insights for prosthetic designs

机译:正常步态中踝足系统组合的机械能曲线:假体设计的见解

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摘要

Over the last half-century, the field of prosthetic engineering has continuously evolved with much attention being dedicated to restoring the mechanical energy properties of ankle joint musculatures during gait. However, the contributions of 'distal foot structures' (e.g., foot muscles, plantar soft tissue) have been overlooked. Therefore, the purpose of this study was to quantify the total mechanical energy profiles (e.g., power, work, and work-ratio) of the natural ankle-foot system (NAFS) by combining the contributions of the ankle joint and all distal foot structures during stance in level-ground steady state walking across various speeds (0.4, 0.6, 0.8 and 1.0. statures/s). The results from eleven healthy subjects walking barefoot indicated ankle joint and distal foot structures generally performed opposing roles: the ankle joint performed net positive work that systematically increased its energy generation with faster walking speeds, while the distal foot performed net negative work that systematically increased its energy absorption with faster walking speeds. Accounting for these simultaneous effects, the combined ankle-foot system exhibited increased work-ratios with faster walking. Most notably, the work-ratio was not significantly greater than 1.0 during the normal walking speed of 0.8. statures/s. Therefore, a prosthetic design that strategically exploits passive-dynamic properties (e.g., elastic energy storage and return) has the potential to replicate the mechanical energy profiles of the NAFS during level-ground steady-state walking.
机译:在过去的半个世纪中,假肢工程领域一直在不断发展,其中很多注意力都集中在恢复步态中踝关节肌肉的机械能特性上。然而,“远侧脚部结构”(例如,脚部肌肉,足底软组织)的贡献已被忽略。因此,本研究的目的是通过结合踝关节和所有远端足结构的贡献来量化自然踝足系统(NAFS)的总机械能分布(例如,功率,功和工作比)在处于水平地面稳定状态的姿态下,以各种速度(0.4、0.6、0.8和1.0。statures / s)行走。十一名赤脚走路的健康受试者的结果表明,踝关节和远端脚部结构通常起相反的作用:踝关节执行净正功,以更快的步行速度系统地增加其能量生成,而远端脚执行净负功,从而系统地增加其负能量更快的步行速度吸收能量。考虑到这些同时发生的影响,组合的踝足系统表现出增加的工作比率和更快的步行速度。最值得注意的是,在0.8的正常步行速度下,工作比率并不明显大于1.0。身材/秒。因此,策略性地利用被动动力特性(例如,弹性能量存储和返回)的假体设计具有在水平地面稳态行走过程中复制NAFS的机械能分布的潜力。

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