TY - GEN
T1 - On the design of rigid-soft hybrid exoskeleton based on remote cable actuator for gait rehabilitation
AU - Zhou, Zhihao
AU - Wang, Zilu
AU - Wang, Qining
N1 - Publisher Copyright:
© 2020 IEEE.
PY - 2020/7
Y1 - 2020/7
N2 - Lower-limb exoskeletons for gait rehabilitation have been widely studied, including rigid or soft mechanisms. It is concluded that soft exoskeletons have better modality in human-robot coordination while rigid ones can provide the support force for stability. Therefore, it attracts interests if an exoskeleton can meet the advantages of both the 'soft' and 'rigid' ones. In this paper, we proposed a kind of rigid-soft hybrid structure, which not only meet the 'soft' requirements without joint restriction, but also provide support for the limbs to implement the 'rigid' function. The hybrid exoskeleton is based on no-joint design and assist human limbs by linear cable-driven actuator, which is driven by motor through cable-sheath transmission structure. We separate the motor, control, acquisition and power components from the common exoskeleton system structure and integrated them on a mobile platform. This design can minimize the weight on the human body, where we only keep the actuator of exoskeleton on lower limb. Preliminary experiments validate the feasibility of the proposed system.
AB - Lower-limb exoskeletons for gait rehabilitation have been widely studied, including rigid or soft mechanisms. It is concluded that soft exoskeletons have better modality in human-robot coordination while rigid ones can provide the support force for stability. Therefore, it attracts interests if an exoskeleton can meet the advantages of both the 'soft' and 'rigid' ones. In this paper, we proposed a kind of rigid-soft hybrid structure, which not only meet the 'soft' requirements without joint restriction, but also provide support for the limbs to implement the 'rigid' function. The hybrid exoskeleton is based on no-joint design and assist human limbs by linear cable-driven actuator, which is driven by motor through cable-sheath transmission structure. We separate the motor, control, acquisition and power components from the common exoskeleton system structure and integrated them on a mobile platform. This design can minimize the weight on the human body, where we only keep the actuator of exoskeleton on lower limb. Preliminary experiments validate the feasibility of the proposed system.
UR - https://www.scopus.com/pages/publications/85090390968
U2 - 10.1109/AIM43001.2020.9159027
DO - 10.1109/AIM43001.2020.9159027
M3 - 会议稿件
AN - SCOPUS:85090390968
T3 - IEEE/ASME International Conference on Advanced Intelligent Mechatronics, AIM
SP - 1902
EP - 1907
BT - 2020 IEEE/ASME International Conference on Advanced Intelligent Mechatronics, AIM 2020
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2020 IEEE/ASME International Conference on Advanced Intelligent Mechatronics, AIM 2020
Y2 - 6 July 2020 through 9 July 2020
ER -