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经过充分训练的外骨骼使用者的下肢生物力学揭示了在人在回路优化情况下能量消耗降低背后的复杂机制。

Lower limb biomechanics of fully trained exoskeleton users reveal complex mechanisms behind the reductions in energy cost with human-in-the-loop optimization.

作者信息

Poggensee Katherine L, Collins Steven H

机构信息

Department of Mechanical Engineering, Stanford University, Stanford, CA, United States.

Department of Rehabilitation Medicine, Erasmus MC, Rotterdam, Netherlands.

出版信息

Front Robot AI. 2024 Jan 31;11:1283080. doi: 10.3389/frobt.2024.1283080. eCollection 2024.

Abstract

Exoskeletons that assist in ankle plantarflexion can improve energy economy in locomotion. Characterizing the joint-level mechanisms behind these reductions in energy cost can lead to a better understanding of how people interact with these devices, as well as to improved device design and training protocols. We examined the biomechanical responses to exoskeleton assistance in exoskeleton users trained with a lengthened protocol. Kinematics at unassisted joints were generally unchanged by assistance, which has been observed in other ankle exoskeleton studies. Peak plantarflexion angle increased with plantarflexion assistance, which led to increased total and biological mechanical power despite decreases in biological joint torque and whole-body net metabolic energy cost. Ankle plantarflexor activity also decreased with assistance. Muscles that act about unassisted joints also increased activity for large levels of assistance, and this response should be investigated over long-term use to prevent overuse injuries.

摘要

辅助踝关节跖屈的外骨骼可以提高运动中的能量经济性。了解这些能量消耗降低背后的关节水平机制,有助于更好地理解人们如何与这些设备相互作用,以及改进设备设计和训练方案。我们研究了采用延长训练方案的外骨骼使用者对外骨骼辅助的生物力学反应。在其他踝关节外骨骼研究中也观察到,辅助通常不会改变未辅助关节的运动学。随着跖屈辅助的增加,峰值跖屈角度增大,尽管生物关节扭矩和全身净代谢能量消耗降低,但总机械功率和生物机械功率仍增加。踝关节跖屈肌活动也随着辅助而减少。对于大量辅助,作用于未辅助关节的肌肉活动也会增加,应通过长期使用来研究这种反应,以防止过度使用损伤。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/731c/10864513/e30bd0dac760/frobt-11-1283080-g001.jpg

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