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Flexible lower limb exoskeleton systems: A review.

Authors :
Meng, Qiaoling
Zeng, Qingxin
Xie, Qiaolian
Fei, Cuizhi
Kong, Bolei
Lu, Xuhua
Wang, Haibin
Yu, Hongliu
Source :
NeuroRehabilitation. 2022, Vol. 50 Issue 4, p367-390. 24p. 5 Color Photographs, 3 Diagrams, 3 Charts, 1 Graph.
Publication Year :
2022

Abstract

BACKGROUND: As an emerging exoskeleton robot technology, flexible lower limb exoskeleton (FLLE) integrates flexible drive and wearable mechanism, effectively solving many problems of traditional rigid lower limb exoskeleton (RLLE) such as higher quality, poorer compliance and relatively poor portability, and has become one of the important development directions in the field of active rehabilitation. OBJECTIVE: This review focused on the development and innovation process in the field of FLLE in the past decade. METHOD: Related literature published from 2010 to 2021 were searched in EI, IEEE Xplore, PubMed and Web of Science databases. Seventy target research articles were further screened and sorted through inclusion and exclusion criteria. RESULTS: FLLE is classified according to different driving modes, and the advantages and disadvantages of passive flexible lower limb exoskeletons and active flexible lower limb exoskeletons are comprehensively summarized. CONCLUSION: At present, FLLE's research is mainly based on cable drive, bionic pneumatic muscles followed and matured, and new exoskeleton designs based on smart material innovations also trend to diversify. In the future, the development direction of FLLE will be lightweight and drive compliance, and the multi-mode sensory feedback control theory, motion intention recognition theory and human-machine interaction theory will be combined to reduce the metabolic energy consumption of walking. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10538135
Volume :
50
Issue :
4
Database :
Academic Search Index
Journal :
NeuroRehabilitation
Publication Type :
Academic Journal
Accession number :
157790449
Full Text :
https://doi.org/10.3233/NRE-210300