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The foot and ankle structures reveal emergent properties analogous to passive springs during human walking

机译:脚和脚踝结构显示出类似于人类行走过程中的被动弹簧的新兴特性

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摘要

An objective understanding of human foot and ankle function can drive innovations of bio-inspired wearable devices. Specifically, knowledge regarding how mechanical force and work are produced within the human foot-ankle structures can help determine what type of materials or components are required to engineer devices. In this study, we characterized the combined functions of the foot and ankle structures during walking by synthesizing the total force, displacement, and work profiles from structures distal to the shank. Eleven healthy adults walked at four scaled speeds. We quantified the ground reaction force and center-of-pressure displacement in the shank’s coordinate system during stance phase and the total mechanical work done by these structures. This comprehensive analysis revealed emergent properties of foot-ankle structures that are analogous to passive springs: these structures compressed and recoiled along the longitudinal axis of the shank, and performed near zero or negative net mechanical work across a range of walking speeds. Moreover, the subject-to-subject variability in peak force, total displacement, and work were well explained by three simple factors: body height, mass, and walking speed. We created a regression-based model of stance phase mechanics that can inform the design and customization of wearable devices that may have biomimetic or non-biomimetic structures.
机译:对人脚和脚踝功能的客观了解可以推动受生物启发的可穿戴设备的创新。具体而言,有关如何在人的脚踝结构内产生机械力和功的知识可以帮助确定设计设备所需的材料或组件的类型。在这项研究中,我们通过合成小腿远端结构的总力,位移和工作曲线来表征步行过程中脚和踝结构的组合功能。十一名健康的成年人以四种比例的速度行走。我们在站立阶段量化了柄部坐标系中的地面反作用力和压力中心位移,以及这些结构完成的全部机械工作。这项全面的分析揭示了类似于被动弹簧的脚踝结构的新兴特性:这些结构沿着小腿的纵轴压缩和反冲,并且在一定的行走速度范围内执行接近零或负的净机械功。此外,可以通过三个简单的因素很好地说明受试者在峰值力,总位移和工作量方面的变异性:身高,体重和步行速度。我们创建了基于姿态阶段力学的基于回归的模型,该模型可以为可仿生或非仿生结构的可穿戴设备的设计和定制提供信息。

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