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在最大深蹲跳过程中使用被动双关节踝膝外骨骼

Implementation of a passive bi-articular ankle-knee exoskeleton during maximal squat jumping.

作者信息

Wade Logan, Lichtwark Glen, Farris Dominic

机构信息

Department for Health, University of Bath, Bath, UK.

School of Human Movement and Nutrition Sciences, The University of Queensland, Brisbane, Queensland, Australia.

出版信息

R Soc Open Sci. 2024 Jul 31;11(7):240390. doi: 10.1098/rsos.240390. eCollection 2024 Jul.

Abstract

Owing to the unexplored potential to harness knee extension power during jumping, the current study aimed to examine how joint mechanics were altered with a biologically inspired, passive bi-articular ankle-knee exoskeleton, which could potentially facilitate greater jump height by increasing work production about the knee and ankle. Twenty-five participants (16 males and 9 females, 175.2 ± 8.2 cm, 72.9 ± 10.3 kg, 24.0 ± 3.4 years) performed maximal squat jumping with and without the exoskeletal device and we compared jump height, joint moment and joint work of the lower limbs. Despite a low exoskeleton stiffness and therefore a limited capacity to store energy, the bi-articular device resulted in decreased jump height (1.9 ± 3.1 cm, = 0.006), decreased net work about the knee (0.23 J/kg, < 0.001) and no increase in ankle joint work ( = 0.207), compared with jumping with no exoskeleton. Based on our findings, to mimic unassisted ankle joint moment profiles, a future bi-articular device would need increased elastic element slack length, greater stiffness and a larger moment arm about the ankle. Future designs could also employ attachment sites that have minimal overlying soft tissue, such as the pelvis, to improve comfort of the device.

摘要

由于在跳跃过程中利用伸膝力量的潜力尚未得到充分探索,本研究旨在探究一种受生物启发的被动双关节踝膝外骨骼如何改变关节力学,该外骨骼可能通过增加膝关节和踝关节的做功来提高跳跃高度。25名参与者(16名男性和9名女性,身高175.2±8.2厘米,体重72.9±10.3千克,年龄24.0±3.4岁)在佩戴和不佩戴外骨骼装置的情况下进行最大深蹲跳跃,我们比较了下肢的跳跃高度、关节力矩和关节功。尽管外骨骼刚度较低,因此储能能力有限,但与不佩戴外骨骼跳跃相比,双关节装置导致跳跃高度降低(1.9±3.1厘米,P=0.006),膝关节净功降低(0.23焦/千克,P<0.001),踝关节功没有增加(P=0.207)。基于我们的研究结果,为了模拟无辅助时的踝关节力矩曲线,未来的双关节装置需要增加弹性元件的松弛长度、提高刚度并增加踝关节的力臂。未来的设计还可以采用软组织覆盖最少的附着部位,如骨盆,以提高装置的舒适度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d918/11288684/03ecc2428cab/rsos.240390.f001.jpg

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