TY - JOUR
T1 - Position solution of a novel four-DOFs self-aligning exoskeleton mechanism for upper limb rehabilitation
AU - Li, Jianfeng
AU - Cao, Qiang
AU - Zhang, Chunzhao
AU - Tao, Chunjing
AU - Ji, Run
N1 - Publisher Copyright:
© 2019 Elsevier Ltd
PY - 2019/11
Y1 - 2019/11
N2 - Upper limb rehabilitation exoskeletons are critical equipments for stroke patients with motor function disorders. According to the floating characteristic of human gleno-humeral (GH) joint center, the configuration synthesis for the four-degrees of freedom (4-DOFs) self-aligning exoskeleton mechanisms (SAEMs) is addressed. Based on the configuration priorities of SAEMs, a novel 4-DOFs SAEM is proposed. While the exoskeleton is connected to the upper limb, a human-exoskeleton closed chain with two loops is formed. Subsequently, the kinematic equations of the human-exoskeleton closed chain are established and a position solution method is presented. To evaluate the kinematic performance of the SAEM, the movements of the upper limb in activities of daily living (ADL) are quantified experimentally, on which the joint angle trajectories are generated. Finally, kinematic characteristics of the SAEM in ADL are investigated. Results of the study indicate that the SAEM is suitable for the upper limb rehabilitation and can be used as primary design parameters for the proposed SAEM.
AB - Upper limb rehabilitation exoskeletons are critical equipments for stroke patients with motor function disorders. According to the floating characteristic of human gleno-humeral (GH) joint center, the configuration synthesis for the four-degrees of freedom (4-DOFs) self-aligning exoskeleton mechanisms (SAEMs) is addressed. Based on the configuration priorities of SAEMs, a novel 4-DOFs SAEM is proposed. While the exoskeleton is connected to the upper limb, a human-exoskeleton closed chain with two loops is formed. Subsequently, the kinematic equations of the human-exoskeleton closed chain are established and a position solution method is presented. To evaluate the kinematic performance of the SAEM, the movements of the upper limb in activities of daily living (ADL) are quantified experimentally, on which the joint angle trajectories are generated. Finally, kinematic characteristics of the SAEM in ADL are investigated. Results of the study indicate that the SAEM is suitable for the upper limb rehabilitation and can be used as primary design parameters for the proposed SAEM.
KW - Exoskeleton mechanism
KW - Kinematic characteristics
KW - Position solution
KW - Self-aligning
KW - Upper limb rehabilitation
UR - https://www.scopus.com/pages/publications/85068509366
U2 - 10.1016/j.mechmachtheory.2019.06.020
DO - 10.1016/j.mechmachtheory.2019.06.020
M3 - 文章
AN - SCOPUS:85068509366
SN - 0094-114X
VL - 141
SP - 14
EP - 39
JO - Mechanism and Machine Theory
JF - Mechanism and Machine Theory
ER -