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Structure Design, Kinematics Analysis, and Effect Evaluation of a Novel Ankle Rehabilitation Robot

Qu, Shuwei; Li, Ruiqin; Yao, Wei; Ma, Chunsheng; Guo, Zhihong

Structure Design, Kinematics Analysis, and Effect Evaluation of a Novel Ankle Rehabilitation Robot Thumbnail


Authors

Shuwei Qu

Ruiqin Li

Wei Yao

Chunsheng Ma

Zhihong Guo



Contributors

Claudio Belvedere
Editor

Abstract

This paper presents a novel ankle rehabilitation (2-CRS+PU)&R hybrid mechanism, which can meet the size requirements of different adult lower limbs based on the three-movement model of the ankle. This model is related to three types of movement modes of the ankle movement, without axis offset, which can cover the ankle joint movements. The inverse and forward position/kinematics results analysis of the mechanism is established based on the closed-loop vector method and using the optimization of particle groups algorithm. Four groups of position solutions of the mechanism are obtained. The kinematics simulation is analyzed using ADAMS software. The variations of the velocity and acceleration of all limbs are stable, without any sudden changes, which can effectively ensure the safety and comfort of the ankle model end-user. The dexterity of the mechanism is analyzed based on the transport function, and the results indicate that the mechanism has an excellent transfer performance in yielding the structure parameters. Finally, the rehabilitation evaluation is conducted according to the three types of movement modes of the ankle joint. The results show that this ankle rehabilitation mechanism can provide a superior rehabilitation function.

Citation

Qu, S., Li, R., Yao, W., Ma, C., & Guo, Z. (2023). Structure Design, Kinematics Analysis, and Effect Evaluation of a Novel Ankle Rehabilitation Robot. Applied Sciences, 13(10), 6109. https://doi.org/10.3390/app13106109

Journal Article Type Article
Acceptance Date Apr 28, 2023
Online Publication Date May 16, 2023
Publication Date May 16, 2023
Deposit Date Jun 8, 2023
Publicly Available Date Jun 8, 2023
Journal Applied Sciences
Publisher MDPI
Peer Reviewed Peer Reviewed
Volume 13
Issue 10
Pages 6109
DOI https://doi.org/10.3390/app13106109
Keywords rehabilitation effect evaluation, ankle rehabilitation, kinematics, (2-CRS+PU)&R hybrid mechanism, dexterity

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