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弹性踝关节外骨骼在意外扰动期间影响比目鱼肌肌束动力学。

Elastic ankle exoskeletons influence soleus fascicle dynamics during unexpected perturbations.

机构信息

School of Biomedical Sciences, University of Queensland, St Lucia, Queensland, Australia.

School of Exercise & Nutrition Sciences, Queensland University of Technology, Brisbane, QLD, Australia.

出版信息

J Biomech. 2023 Oct;159:111775. doi: 10.1016/j.jbiomech.2023.111775. Epub 2023 Aug 23.

Abstract

Spring-based passive ankle exoskeletons have been designed to emulate the energy conservation and power amplification roles of biological muscle-tendon units during locomotion. Yet, it remains unknown if similar assistive devices can serve the other elastomechanical role of biological muscle-tendon units - power attenuation. Here we explored the effect of bilateral passive ankle exoskeletons on neuromuscular control and muscle fascicle dynamics in the ankle plantarflexors during rapid, unexpected vertical perturbations. We recorded muscle activation and soleus fascicle length changes during hopping with and without exoskeleton assistance (0 and 76 Nm rad) on elevated platforms (20 cm), which were removed at an unknown time. Our results demonstrate that exoskeleton assistance leads to a reduction in soleus muscle activation, increases in fascicle length change and decreases in muscle forces during perturbed hopping. These changes have competing effects on the mechanics and energetics of lower limb muscles, likely limiting the capacity for series elastic tissues to absorb energy. As we strive towards the design of wearable assistive devices for everyday locomotion, information regarding real-time muscle-tendon behavior may enable tunable assistance that adapts to both the user and the environment.

摘要

基于弹簧的被动踝关节外骨骼旨在模拟生物肌肉-肌腱单元在运动过程中的能量节约和功率放大作用。然而,目前尚不清楚类似的辅助设备是否可以发挥生物肌肉-肌腱单元的另一个弹性力学作用——功率衰减。在这里,我们研究了双侧被动踝关节外骨骼对快速、意外垂直干扰下踝关节跖屈肌的神经肌肉控制和肌束动力学的影响。我们在升高的平台(20 厘米)上记录了有和没有外骨骼辅助(0 和 76 Nm rad)时跳跃时的肌肉激活和比目鱼肌束长度变化,这些平台在未知时间被移除。我们的结果表明,外骨骼辅助导致在受干扰的跳跃过程中比目鱼肌肌肉激活减少,肌束长度变化增加,肌肉力量减小。这些变化对下肢肌肉的力学和能量学有竞争作用,可能限制了串联弹性组织吸收能量的能力。随着我们努力设计日常行走用的可穿戴辅助设备,有关实时肌肉-肌腱行为的信息可能会实现适应用户和环境的可调辅助功能。

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