一种无动力外骨骼,具有仿生多段足部结构,用于行走辅助。

IF 4.8 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Yueling Lyu, Yiyue Lin, Shaofeng Zhao, Jianrui Wei, Xianyi Zhang
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引用次数: 0

摘要

下肢外骨骼的设计是为了帮助人类行走。然而,目前的无动力外骨骼主要针对踝关节,但忽视了脚部的能量储存和后坐力。在这项研究中,我们提出了一种无动力的脚踝外骨骼,具有仿生多段足部结构,以模仿自然赤脚行走的节能策略。在外骨骼中建立一个拱状结构,弹簧对准内侧纵弓和足底筋膜,在站立早期和中期储存弹性能量,在站立后期储存后坐力能量。我们发现,与质量匹配的实验鞋相比,外骨骼使健康人步行的总净代谢成本降低了8.5±3.1%,导致平均活动性降低10.6%,比目鱼肌组织氧饱和度指数降低25.9%。正如预期的那样,外骨骼在行走时不会干扰足中部和踝关节的自然运动。外骨骼可以通过帮助比目鱼肌同心收缩推进和允许足内足够的运动来帮助减少能量损失。我们的研究结果强调了利用足内结构的弹性能量储存来辅助行走的重要性,并暗示实施多足结构有可能进一步提高辅助行走装置的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Unpowered Exoskeleton with a Bionic Multi-segment Foot Structure for Walking Assistance.

Lower limb exoskeletons have been designed to assist human walking. However, current unpowered exoskeletons primarily targeted the ankle joint, but neglected the energy storage and recoil within the foot. In this study, we proposed an unpowered foot-ankle exoskeleton with a bionic multi-segment foot structure to mimic energy conservation strategies of natural barefoot walking. An archlike structure was built in the exoskeleton with springs aligning with the medial longitudinal arch and the plantar fascia to store elastic energy in the early and midstance phases and recoil energy in the late stance phase of walking. We found that compared with mass-matched experimental shoes, the exoskeleton reduced the total net metabolic cost of walking by 8.5 ± 3.1% for healthy individuals, and caused a 10.6% reduction in the average activity and a 25.9% reduction in the tissue oxygen saturation index of the soleus. As expected, the exoskeleton did not interfere with the natural motion of the midfoot and ankle joints during walking. The exoskeleton may help reduce energetic penalties by assisting the soleus concentric contraction for propulsion and permitting sufficient intra-foot motion. Our results highlight the importance of utilizing elastic energy storage of intra-foot structures for walking assistance, and imply that implementing a multi-foot structure have a potential to further improve the performance of walking assistance devices.

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来源期刊
CiteScore
8.60
自引率
8.20%
发文量
479
审稿时长
6-12 weeks
期刊介绍: Rehabilitative and neural aspects of biomedical engineering, including functional electrical stimulation, acoustic dynamics, human performance measurement and analysis, nerve stimulation, electromyography, motor control and stimulation; and hardware and software applications for rehabilitation engineering and assistive devices.
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