TY - GEN
T1 - Conceptual Design and Preliminary Experiment of an Orthopedic Rehabilitation Exoskeleton Based on the Coupled Movable Pulley Mechanism (CMPM)
AU - Ji, Yuanlong
AU - Lang, Xuzhou
AU - Wu, Bo
AU - Fan, Yubo
AU - Zheng, Quan
AU - Yang, Xingbang
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024
Y1 - 2024
N2 - During the bone tissue proliferative phase following fracture surgery, axial mechanical stimulation has been shown to facilitate bone healing. This study introduces the mechanism, conceptual design and preliminary experiment of an innovative lower limb orthopedic rehabilitation exoskeleton utilizing the Coupled Movable Pulley Mechanism (CMPM). Unlike conventional exoskeletons that merely offer assistive torque for knee movement, the effector of this exoskeleton additionally exerts controlled axial load at the femur or tibia fracture sites to provide tunable mechanical stimulation. This paper delves into the foundational principles of CMPM and design of the exoskeleton, develops a cable-driven force feedback control system for axial load exertion and knee joint support, and validates CMPM's anticipative functions by experiments. The results suggest that the proposed effectors play a dual role in post-fracture rehabilitation, i.e., providing axial loading stimulation and knee support. This research will potentially expedite post-surgical recovery in orthopedics, enhancing rehabilitation efficiency and improving patient outcomes.
AB - During the bone tissue proliferative phase following fracture surgery, axial mechanical stimulation has been shown to facilitate bone healing. This study introduces the mechanism, conceptual design and preliminary experiment of an innovative lower limb orthopedic rehabilitation exoskeleton utilizing the Coupled Movable Pulley Mechanism (CMPM). Unlike conventional exoskeletons that merely offer assistive torque for knee movement, the effector of this exoskeleton additionally exerts controlled axial load at the femur or tibia fracture sites to provide tunable mechanical stimulation. This paper delves into the foundational principles of CMPM and design of the exoskeleton, develops a cable-driven force feedback control system for axial load exertion and knee joint support, and validates CMPM's anticipative functions by experiments. The results suggest that the proposed effectors play a dual role in post-fracture rehabilitation, i.e., providing axial loading stimulation and knee support. This research will potentially expedite post-surgical recovery in orthopedics, enhancing rehabilitation efficiency and improving patient outcomes.
UR - https://www.scopus.com/pages/publications/85207065369
U2 - 10.1109/WRRC62201.2024.10696897
DO - 10.1109/WRRC62201.2024.10696897
M3 - 会议稿件
AN - SCOPUS:85207065369
T3 - 2024 International Convention on Rehabilitation Engineering and Assistive Technology and World Rehabilitation Robot Convention, WRRC 2024 - Proceedings
BT - 2024 International Convention on Rehabilitation Engineering and Assistive Technology and World Rehabilitation Robot Convention, WRRC 2024 - Proceedings
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2024 International Convention on Rehabilitation Engineering and Assistive Technology and World Rehabilitation Robot Convention, i-CREATE and WRRC 2024
Y2 - 23 August 2024 through 26 August 2024
ER -