Impact of a Lower Limb Exosuit Anchor Points on Energetics and Biomechanics.

IF 4.5 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Chiara Lambranzi, Giulia Oberti, Christian Di Natali, Darwin G Caldwell, Manuela Galli, Elena De Momi, Jesus Ortiz
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Abstract

Anchor point placement is a crucial yet often overlooked aspect of exosuit design since it determines how forces interact with the human body. This work analyzes the impact of different anchor point positions on gait kinematics, muscular activation and energetic consumption. A total of six experiments were conducted with 11 subjects wearing the XoSoft exosuit, which assists hip flexion in five configurations. Subjects were instrumented with an IMU-based motion tracking system, EMG sensors, and a mask to measure metabolic consumption. The results show that positioning the knee anchor point on the posterior side while keeping the hip anchor on the anterior part can reduce muscle activation in the hip flexors by up to 10.21% and metabolic expenditure by up to 18.45%. Even if the only assisted joint was the hip, all the configurations introduced changes also in the knee and ankle kinematics. Overall, no single configuration was optimal across all subjects, suggesting that a personalized approach is necessary to transmit the assistance forces optimally. These findings emphasize that anchor point position does indeed have a significant impact on exoskeleton effectiveness and efficiency. However, these optimal positions are subject-specific to the exosuit design, and there is a strong need for future work to tailor musculoskeletal models to individual characteristics and validate these results in clinical populations.

下肢外骨骼锚点对能量学和生物力学的影响。
锚点的放置是外衣设计中一个关键但经常被忽视的方面,因为它决定了力如何与人体相互作用。本文分析了不同锚点位置对步态运动学、肌肉激活和能量消耗的影响。共有11名受试者穿着XoSoft外骨骼服进行了6次实验,该外骨骼服以5种形态帮助髋关节屈曲。受试者使用基于imu的运动跟踪系统、肌电图传感器和面罩来测量代谢消耗。结果表明,将膝锚点置于髋后侧,髋锚点置于髋前,可使髋屈肌的肌肉激活减少10.21%,代谢消耗减少18.45%。即使唯一的辅助关节是髋关节,所有的配置也会改变膝关节和踝关节的运动学。总体而言,没有单一配置在所有受试者中都是最优的,这表明需要个性化的方法来最优地传递辅助力。这些发现强调,锚点位置确实对外骨骼的有效性和效率有重大影响。然而,这些最佳位置是特定于外骨骼设计的,未来的工作需要根据个体特征定制肌肉骨骼模型,并在临床人群中验证这些结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
IEEE Transactions on Biomedical Engineering
IEEE Transactions on Biomedical Engineering 工程技术-工程:生物医学
CiteScore
9.40
自引率
4.30%
发文量
880
审稿时长
2.5 months
期刊介绍: IEEE Transactions on Biomedical Engineering contains basic and applied papers dealing with biomedical engineering. Papers range from engineering development in methods and techniques with biomedical applications to experimental and clinical investigations with engineering contributions.
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