Exoskeleton Device for Rehabilitation of Stroke Patients Using SEMG during Isometric Contraction

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Abstract:

Robots are becoming more interactive and assisting to human beings day by day. They are serving humanity in the fields of industry, defense and medicine. Exoskeletons are also devices that reside in category of wearable robotics. An exoskeleton is an external structural mechanism with joints and links corresponding to those of the human body. With applications in rehabilitation medicine and virtual reality simulation, exoskeletons offer benefits for both disabled and healthy populations. Exoskeletons can be used as a capability magnifier or assisting device. This paper presents a proposed design for smart active exoskeleton for lower limbs. This proposed exoskeleton design not only assist a person but also tries to improve its GAIT. The twin wearable legs are powered by Actuators, all controlled by a microprocessor. The simulation results of the control mechanism shows its smart capabilities. In addition, the processor based control produces a more natural muscle like activity and as such can be considered a soft and bio-mimetic actuation system. This capacity to “replicate” the function of natural muscle and inherent safety is extremely important when working in close proximity to humans. The integration of the components sections and testing of the performance will also be considered to show how the structure and actuators can be combined to produce the various systems needed for a highly flexible/low weight clinically viable rehabilitation exoskeleton.

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Periodical:

Advanced Materials Research (Volumes 403-408)

Pages:

2033-2038

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Online since:

November 2011

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[1] Daniel P. Ferris and Cara L. Lewis, Robotic Lower Limb Exoskeletons Using Proportional Myoelectric Control, 31st Annual International Conference of the IEEE EMBS Minneapolis, Minnesota, USA, September 2-6, (2009).

DOI: 10.1109/iembs.2009.5333984

Google Scholar

[2] J. Rosen, M. Brand, M.B. Fuchs, and M. Arcan. A myosignal-based powered exoskeleton system. IEEE Transactions on Systems, Man and Cybernetics, 31(3): 210–222, (2001).

DOI: 10.1109/3468.925661

Google Scholar

[3] D.P. Ferris, J.M. Czerniecki, and B. Hannaford. An ankle-foot orthosis powered by artificial pneumatic muscles. Journal of Applied Biomechanics, 21: 189–197, (2005).

DOI: 10.1123/jab.21.2.189

Google Scholar

[4] Pratt, J., Krupp, B., Morse, C., Collins, S., The RoboKnee: An Exoskeleton for Enhancing Strength and Endurance During Walking, IEEE Conf. on Robotics and Aut., New Orleans, (2004).

DOI: 10.1109/robot.2004.1307425

Google Scholar

[5] Kawamoto, H., Sankai, Y., Power Assist System HAL-3 for gait Disorder Person, ICCHP, July 2002, Austria.

Google Scholar

[6] Kawamoto, H., Kanbe, S., Sankai, Y., Power Assist Method for HAL-3 Estimating Operator's Intention Based on Motion Information, in Proc. of 2003 IEEE Workshop on Robot and Human Interactive Communication, Millbrae, CA, 2003 pp.67-72.

DOI: 10.1109/roman.2003.1251800

Google Scholar

[7] Nissan Kunju, Neelesh Kumar, Dinesh Pankaj, Aseem Dhawan, Dr Amod Kumar, EMG Signal Analysis for Identifying Walking Patterns of Normal Healthy Individuals, Indian Journal of Biomechanics: Special Issue (NCBM 7-8 March 2009) Pg no: 118-122.

Google Scholar