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机器人辅助推进训练:在用户驱动的跑步机控制下,施加于髋关节和膝关节的扭矩脉冲的影响。

Robot-Aided Training of Propulsion: Effects of Torque Pulses Applied to the Hip and Knee Joint Under User-Driven Treadmill Control.

作者信息

McGrath Robert L, Sergi Fabrizio

出版信息

IEEE Trans Biomed Eng. 2025 Jan;72(1):166-176. doi: 10.1109/TBME.2024.3443235. Epub 2025 Jan 15.

Abstract

OBJECTIVE

to establish whether torque pulses applied by an exoskeleton to the hip and knee joint modulate propulsion mechanics and whether changes in propulsion mechanics are sustained after exposure to torque pulses under user-driven treadmill control.

METHODS

we applied twelve formulations of torque pulses consecutively over 300 strides to 22 healthy participants, and quantified the evolution of four outcome measures - gait speed (GS), hip extension (HE), trailing limb angle (TLA), normalized propulsive impulse (NPI) - before, during, and immediately after training.

RESULTS

Metrics of propulsion mechanics significantly changed both during and after training. Increases in HE during and after training were observed primarily in conjunction with hip/knee flexion pulses during early stance, or hip/knee extension during late stance. Increases in NPI during training were associated with hip/knee extension during early stance, or knee flexion during late stance. Knee flexion during early stance resulted in positive after-effects in NPI. Increases in GS were associated with the application of hip flexion pulses. Conditions exhibiting the largest positive changes in HE, and not NPI, during training resulted in increased GS after training. Analysis of the relationship between the effects measured during and after training suggests that after-effects primarily arise from retention of training effects, and that such retention is amplified compared to fixed-speed training.

CONCLUSION AND SIGNIFICANCE

Combination of exoskeleton training and user-driven treadmill control modulates propulsion mechanics both during and after training and can be considered for the formulation of propulsion-oriented methods for individuals with impairments in propulsion mechanics.

摘要

目的

确定外骨骼施加于髋关节和膝关节的扭矩脉冲是否会调节推进力学,以及在用户驱动的跑步机控制下暴露于扭矩脉冲后,推进力学的变化是否会持续。

方法

我们对22名健康参与者连续300步施加了12种扭矩脉冲配方,并在训练前、训练期间和训练后立即量化了四种结果指标的变化——步速(GS)、髋关节伸展(HE)、后肢角度(TLA)、归一化推进冲量(NPI)。

结果

推进力学指标在训练期间和训练后均有显著变化。训练期间和训练后的髋关节伸展增加主要与早期站立时的髋/膝屈曲脉冲,或晚期站立时的髋/膝伸展有关。训练期间归一化推进冲量的增加与早期站立时的髋/膝伸展,或晚期站立时的膝关节屈曲有关。早期站立时的膝关节屈曲导致归一化推进冲量产生积极的后效应。步速的增加与髋关节屈曲脉冲的应用有关。在训练期间髋关节伸展呈现最大正向变化而非归一化推进冲量的情况,导致训练后步速增加。对训练期间和训练后测量的效应之间的关系分析表明,后效应主要源于训练效应的保留,并且与固定速度训练相比,这种保留得到了放大。

结论及意义

外骨骼训练与用户驱动的跑步机控制相结合,在训练期间和训练后均能调节推进力学,可考虑用于为推进力学受损的个体制定以推进为导向的方法。

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