ARMin III - arm therapy exoskeleton with an ergonomic shoulder actuation

被引:365
作者
Nef, Tobias [1 ,2 ]
Guidali, Marco [3 ,4 ]
Riener, Robert [3 ,4 ]
机构
[1] Department of Biomedical Engineering, The Catholic University of America, Washington, DC
[2] National Rehabilitation Hospital, Washington, DC
[3] Balgrist University Hospital, University Zurich
[4] Sensory-Motor Systems Lab, Institute of Robotics and Intelligent Systems, ETH Zurich
基金
美国国家科学基金会;
关键词
Arm rehabilitation robotics; Exoskeleton; Shoulder actuation;
D O I
10.1080/11762320902840179
中图分类号
学科分类号
摘要
Rehabilitation robots have become important tools in stroke rehabilitation. Compared to manual arm training, robot-supported training can be more intensive, of longer duration and more repetitive. Therefore, robots have the potential to improve the rehabilitation process in stroke patients. Whereas a majority of previous work in upper limb rehabilitation robotics has focused on end-effector-based robots, a shift towards exoskeleton robots is taking place because they offer a better guidance of the human arm, especially for movements with a large range of motion. However, the implementation of an exoskeleton device introduces the challenge of reproducing the motion of the human shoulder, which is one of the most complex joints of the body. Thus, this paper starts with describing a simplified model of the human shoulder. On the basis of that model, a new ergonomic shoulder actuation principle that provides motion of the humerus head is proposed, and its implementation in the ARMin III arm therapy robot is described. The focus lies on the mechanics and actuation principle. The ARMin III robot provides three actuated degrees of freedom for the shoulder and one for the elbow joint. An additional module provides actuated lower arm pro/supination and wrist flexion/extension. Five ARMin III devices have been manufactured and they are currently undergoing clinical evaluation in hospitals in Switzerland and in the United States. © 2009 Taylor & Francis.
引用
收藏
页码:127 / 142
页数:15
相关论文
共 56 条
[1]  
Bagg S.D., Forrest W.J., A biomechanical analysis of scapula rotation during arm abduction in the scapula plane, Am J Phys Med Rehabil, 67, 6, pp. 238-245, (1988)
[2]  
Bayona N.A., Bitensky J., Salter K., Teasell R., The role of task-specific training in rehabilitation therapies, Top Stroke Rehabil, 12, pp. 58-65, (2005)
[3]  
Bergamasco M., Borelli L., Carboncini M.C., Frisoli A., Marcheschi S., Montagner A., Procopio C., Rossi B., Salsledo F., Tolaini M., Arm rehabilitation with a robotic exoskeleleton in Virtual Reality, Proceedings of The IEEE 10th International Conference On Rehabilitation Robotics, pp. 631-642, (2007)
[4]  
Brainin M., Bornstein N., Boysen G., Demarin V., Acute neurological stroke care in Europe: Results of the European stroke care inventory, Eur J Neurol, 7, pp. 5-10, (2000)
[5]  
Butefisch C., Hummelsheim H., Denzler P., Mauritz K.H., Repetitive training of isolated movements improves the outcome of motor rehabilitation of the centrally paretic hand, J Neurol Sci, 130, pp. 59-68, (1995)
[6]  
Carignan C., Liszka M., Design of an arm exoskeleton with scapula motion for shoulder rehabilitation, Proceedings of The 12th International Conference On Advanced Robotics, pp. 524-531, (2005)
[7]  
Cheng J.C., Leung S.S., Chiu B.S., Tse P.W., Lee C.W., Chan A.K., Xia G., Leung A.K., Xu Y.Y., Can we predict body height from segmental bone length measurements? A study of 3,647 children, J Pediatr Orthop, 18, 3, pp. 387-393, (1998)
[8]  
Colgate J.E., The Control of Dynamically Interacting Systems, (1988)
[9]  
Coote S., Stokes E., Murphy B., Harwin W., The effect of GENTLE/s robot-mediated therapy on upper extremity dysfunction post stroke, Proceedings of The 8th International Conference On Rehabilitation Robotics, pp. 59-61, (2003)
[10]  
Culham E., Peat M., Functional anatomy the shoulder complex, J Orthop Sports Phys Ther, 18, 1, pp. 342-350, (1993)