IEEE Trans Biomed Eng. 2021 Jun;68(6):1941-1950. doi: 10.1109/TBME.2020.3038582. Epub 2021 May 21.
This article aimed to develop a unique exoskeleton to provide different types of elastic resistances (i.e., resisting flexion, extension, or bidirectionally) to the leg muscles during walking.
We created a completely passive leg exoskeleton, consisting of counteracting springs, pulleys, and clutches, to provide different types of elastic resistance to the knee. We first used a benchtop setting to calibrate the springs and validate the resistive capabilities of the device. We then tested the device's ability to alter gait mechanics, muscle activation, and kinematic aftereffects when walking on a treadmill under the three resistance types.
Benchtop testing indicated that the device provided a nearly linear torque profile and could be accurately configured to alter the angle where the spring system was undeformed (i.e., the resting position). Treadmill testing indicated the device could specifically target knee flexors, extensors, or both, and increase eccentric loading at the joint. Additionally, these resistance types elicited different kinematic aftereffects that could be used to target user-specific spatiotemporal gait deficits.
These results indicate that the elastic device can provide various types of targeted resistance training during walking.
The proposed elastic device can provide a diverse set of resistance types that could potentially address user-specific muscle weaknesses and gait deficits through functional resistance training.
本文旨在开发一种独特的外骨骼,在行走过程中为腿部肌肉提供不同类型的弹性阻力(即抵抗弯曲、伸展或双向)。
我们创建了一个完全被动的腿部外骨骼,由对抗弹簧、滑轮和离合器组成,为膝盖提供不同类型的弹性阻力。我们首先使用台式设置来校准弹簧,并验证设备的阻力能力。然后,我们在跑步机上测试了该设备在三种阻力类型下改变步态力学、肌肉激活和运动后效的能力。
台式测试表明,该设备提供了几乎线性的扭矩曲线,并可以准确配置来改变弹簧系统未变形的角度(即静止位置)。跑步机测试表明,该设备可以专门针对膝关节屈肌、伸肌或两者,并增加关节处的离心负荷。此外,这些阻力类型产生了不同的运动后效,可以用于针对特定用户的时空步态缺陷。
这些结果表明,弹性装置可以在行走过程中提供各种类型的靶向阻力训练。
所提出的弹性装置可以提供多种类型的阻力,通过功能性阻力训练,可能针对特定用户的肌肉弱点和步态缺陷。