模拟人体脊柱运动的被动背部支撑外骨骼的开发,用于职业任务中的多姿势辅助。

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Jiyuan Wu, Zhiquan Chen, Yinglong Zhang, Qi Zhang, Xingsong Wang, Mengqian Tian
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引用次数: 0

摘要

被动式背部支撑外骨骼通常采用弹性组件来帮助用户完成动态任务。然而,这些设计在为长时间的静态弯曲姿势提供持续的辅助方面是无效的,例如在手术、装配和农业中,使用者会经历持续的腰椎弯曲。为了解决这一限制,在这项工作中提出了一种受人类脊柱启发的新型被动背支撑外骨骼。外骨骼集成了一个五杆连接机构与椎体模拟单元,允许动态屈伸运动和各种屈曲角度的刚性支撑。在实验过程中,受试者被要求在两种情况下完成30分钟的前屈组装任务:佩戴和不佩戴外骨骼。与自由状态相比,肌电图结果显示,有外骨骼的竖脊肌的综合肌电图(IEMG)减少了10.1%,均方根(RMS)值减少了9.78%。同时,代谢率降低了11.1%,突出了外骨骼在缓解长时间静态工作时肌肉疲劳的有效性。这项工作为减少需要持续前屈的职业中的肌肉骨骼张力提供了一个有希望的解决方案,使其成为被动外骨骼技术的一个有价值的进步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a Passive Back-Support Exoskeleton Mimicking Human Spine Motion for Multi-Posture Assistance in Occupational Tasks.

Passive back-support exoskeletons commonly employ elastic components to assist users during dynamic tasks. However, these designs are ineffective in providing sustained assistance for prolonged static bending postures, such as those required in surgery, assembly, and farming, where users experience continuous lumbar flexion. To address this limitation, a novel passive back-support exoskeleton inspired by the human spine is proposed in this work. The exoskeleton integrates a five-bar linkage mechanism with vertebrae-mimicking units, allowing for both dynamic flexion-extension movements and rigid support at various flexion angles. During the experiments, subjects are instructed to perform a 30-min forward-bending assembly task under two conditions: with and without wearing the exoskeleton. Compared to the free condition, the electromyography results indicate a 10.1% reduction in integrated EMG (IEMG) and a 9.78% decrease in root mean square (RMS) values of the erector spinae with the exoskeleton. Meanwhile, the metabolic rate is decreased by 11.1%, highlighting the effectiveness of the exoskeleton in mitigating muscle fatigue during prolonged static work. This work provides a promising solution for reducing musculoskeletal strain in occupations requiring sustained forward bending, making it a valuable advancement in passive exoskeleton technology.

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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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