The development of innovative exoskeletons for the upper limb requires a strong collaboration between robotics and neuroscience. The robotic system will be deeply coupled to the human user and the exoskeleton design should be based on the human model in terms of biomechanics, and control and learning strategies. This paper presents the preliminary results of the design process of the Neurobotics exoskeleton (NEUROexos). A bioinspired three joints-three links robotic arm is under development for implementing bioinspired control strategies and for obtaining a human-like robotic arm to be used for assessing active exoskeletons in fully safe conditions. In particular, this paper presents the shoulder joint-first link prototype, the selected actuation system, the actuator modelling and identification, and the experimental evaluation of the prototype capability to replicate the human shoulder kinematics during the execution of a catching task.

Sardellitti, I., Cattin, E., Roccella, S., Vecchi, F., Carrozza, M., Dario, P., et al. (2006). Description, Characterization and Assessment of a Bio-Inspired Shoulder Joint-First Link Robot for Neuro-Robotic Applications. In Proceedings of the First IEEE/RAS-EMBS International Conference on Biomedical Robotics and Biomechatronics, 2006, BioRob 2006 (pp.112-117). IEEE [10.1109/BIOROB.2006.1639069].

Description, Characterization and Assessment of a Bio-Inspired Shoulder Joint-First Link Robot for Neuro-Robotic Applications

Carrozza M. C.;
2006

Abstract

The development of innovative exoskeletons for the upper limb requires a strong collaboration between robotics and neuroscience. The robotic system will be deeply coupled to the human user and the exoskeleton design should be based on the human model in terms of biomechanics, and control and learning strategies. This paper presents the preliminary results of the design process of the Neurobotics exoskeleton (NEUROexos). A bioinspired three joints-three links robotic arm is under development for implementing bioinspired control strategies and for obtaining a human-like robotic arm to be used for assessing active exoskeletons in fully safe conditions. In particular, this paper presents the shoulder joint-first link prototype, the selected actuation system, the actuator modelling and identification, and the experimental evaluation of the prototype capability to replicate the human shoulder kinematics during the execution of a catching task.
paper
Biomechanical model; Exoskeleton; Neuro-rehabilitation; Neuro-robotics; Robotic arm;
English
1st IEEE/RAS-EMBS International Conference on Biomedical Robotics and Biomechatronics, 2006, BioRob 2006 - 20 February 2006 through 22 February 2006
2006
Proceedings of the First IEEE/RAS-EMBS International Conference on Biomedical Robotics and Biomechatronics, 2006, BioRob 2006
9781424400409
2006
2006
112
117
1639069
none
Sardellitti, I., Cattin, E., Roccella, S., Vecchi, F., Carrozza, M., Dario, P., et al. (2006). Description, Characterization and Assessment of a Bio-Inspired Shoulder Joint-First Link Robot for Neuro-Robotic Applications. In Proceedings of the First IEEE/RAS-EMBS International Conference on Biomedical Robotics and Biomechatronics, 2006, BioRob 2006 (pp.112-117). IEEE [10.1109/BIOROB.2006.1639069].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/623249
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