Physical HumanRobot Interaction Control of Variable Stiffness Exoskeleton With sEMG-Based Torque Estimation

被引:26
作者
Zhu, Yanghui [1 ]
Wu, Qingcong [1 ]
Chen, Bai [1 ]
Zhao, Ziyue [1 ]
Liang, Conghui [2 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, Coll Mech & Elect Engn, Nanjing 210016, Peoples R China
[2] Tencent Technol Shenzhen Co Ltd, Tencent Robot X Lab, Shenzhen 518000, Peoples R China
基金
中国国家自然科学基金;
关键词
Exoskeletons; Torque; Impedance; Springs; Pulleys; Actuators; Estimation; Assist-as-needed (AAN); physical human-robot interaction (pHRI); rehabilitation exoskeleton; surface electromyography signal (sEMG); variable stiffness actuator (VSA); ACTUATOR; DESIGN; STRATEGY; SYSTEM; LIMB;
D O I
10.1109/TII.2023.3240749
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Robotic exoskeleton assistance is an effective method for the treatment of patients with movement disorders. First, this article presents a variable stiffness knee exoskeleton robot, which can independently control stiffness and position and has a large stiffness range under low preload. Then, combined with the designed variable stiffness exoskeleton, a physical human-robot interaction (pHRI) control scheme based on joint torque estimation is proposed. Different from previous studies, this method uses the mechanical properties of the exoskeleton to achieve pHRI without complex control algorithms and force/torque sensors. Furthermore, the joint torque is estimated based on the surface electromyography signal and the Hill-based muscle model, and the exoskeleton can realize assist-as-needed function: when the subject trains with less effort, the exoskeleton maintains a high output physical impedance to provide high tracking accuracy; and when the subject trains with greater effort, the exoskeleton maintains a low output impedance to provide high physical compliance. Finally, we conducted experiments on three healthy subjects and two subjects with lower limb motor dysfunction to verify the effectiveness of the torque estimation method and the pHRI control scheme.
引用
收藏
页码:10601 / 10612
页数:12
相关论文
共 36 条
[1]   Field-Based Assist-as-Needed Control Schemes for Rehabilitation Robots [J].
Asl, Hamed Jabbari ;
Yamashita, Masashi ;
Narikiyo, Tatsuo ;
Kawanishi, Michihiro .
IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2020, 25 (04) :2100-2111
[2]   Design and evaluation of a torque-controllable knee joint actuator with adjustable series compliance and parallel elasticity [J].
Bacek, Tomislav ;
Moltedo, Marta ;
Rodriguez-Guerrero, Carlos ;
Geeroms, Joost ;
Vanderborght, Bram ;
Lefeber, Dirk .
MECHANISM AND MACHINE THEORY, 2018, 130 :71-85
[3]   Virtual and physical prototyping of a beam-based variable stiffness actuator for safe human-machine interaction [J].
Bilancia, Pietro ;
Berselli, Giovanni ;
Palli, Gianluca .
ROBOTICS AND COMPUTER-INTEGRATED MANUFACTURING, 2020, 65
[4]   An Elbow Exoskeleton for Upper Limb Rehabilitation With Series Elastic Actuator and Cable-Driven Differential [J].
Chen, Tianyao ;
Casas, Rafael ;
Lum, Peter S. .
IEEE TRANSACTIONS ON ROBOTICS, 2019, 35 (06) :1464-1474
[5]   A Wearable Hand Rehabilitation System With Soft Gloves [J].
Chen, Xiaoshi ;
Gong, Li ;
Wei, Liang ;
Yeh, Shih-Ching ;
Xu, Li Da ;
Zheng, Lirong ;
Zou, Zhuo .
IEEE TRANSACTIONS ON INDUSTRIAL INFORMATICS, 2021, 17 (02) :943-952
[6]   OpenSim: open-source software to create and analyze dynamic Simulations of movement [J].
Delp, Scott L. ;
Anderson, Frank C. ;
Arnold, Allison S. ;
Loan, Peter ;
Habib, Ayman ;
John, Chand T. ;
Guendelman, Eran ;
Thelen, Darryl G. .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2007, 54 (11) :1940-1950
[7]  
Deng DN, 2019, CHIN CONTR CONF, P4397, DOI [10.23919/ChiCC.2019.8866585, 10.23919/chicc.2019.8866585]
[8]   A human-exoskeleton interface utilizing electromyography [J].
Fleischer, Christian ;
Hommel, Guenter .
IEEE TRANSACTIONS ON ROBOTICS, 2008, 24 (04) :872-882
[9]  
FUGLMEYER AR, 1975, SCAND J REHABIL MED, V7, P13
[10]   Force Control of SEA-Based Exoskeletons for Multimode Human-Robot Interactions [J].
Huo, Weiguang ;
Alouane, Mohamed Amine ;
Amirat, Yacine ;
Mohammed, Samer .
IEEE TRANSACTIONS ON ROBOTICS, 2020, 36 (02) :570-577