Design, Development and Evaluation of Novel Force Myography Based 2-Degree of Freedom Transradial Prosthesis

Limb loss is a traumatic event as it has physical and psychological effects on an amputee. Recent advancements in mechatronics and biomedical engineering have resulted in development of dexterous myoelectric prostheses for rehabilitation of amputees. In addition, evolution in manufacturing and sensi...

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Main Authors: Muhammad Usman Qadir, Izhar Ul Haq, Muhammad Awais Khan, Mian Naveed Ahmad, Kamran Shah, Nizar Akhtar
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9539224/
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author Muhammad Usman Qadir
Izhar Ul Haq
Muhammad Awais Khan
Mian Naveed Ahmad
Kamran Shah
Nizar Akhtar
author_facet Muhammad Usman Qadir
Izhar Ul Haq
Muhammad Awais Khan
Mian Naveed Ahmad
Kamran Shah
Nizar Akhtar
author_sort Muhammad Usman Qadir
collection DOAJ
description Limb loss is a traumatic event as it has physical and psychological effects on an amputee. Recent advancements in mechatronics and biomedical engineering have resulted in development of dexterous myoelectric prostheses for rehabilitation of amputees. In addition, evolution in manufacturing and sensing technology presents ample room for improvement in mechanical design and control system of prostheses to enhance amputee experience while using prosthetic devices. The present study is focused on design of a novel and cost-effective externally powered two-degree-of freedom prosthesis for assisting amputees to switch from body-powered devices to externally powered prosthesis. The control system of the developed prosthesis is based on the muscles signals acquired through force myography (FMG) technique. For precise integration of force-sensitive resistor (FSR) inside the socket to measure muscle activity, a stand-alone housing for FSR was designed with the feature of mechanical adjustment to control sensitivity of FSR and auto-calibrate its threshold to meet the requirements of individual amputees. The housing was designed to handle the fabrication inconsistencies during socket shaping process and thus ensure that sensor is in-firm contact with the muscle to sense volumetric changes. The developed mechanical design and FMG based muscle acquisition technique was successfully tested on a transradial amputee and extensive experimentation was performed for characterization of the prosthesis. FMG signal for various gestures was successfully extracted from muscles of the amputee to control the prosthesis according to the developed control technique. The results suggested that integration of FSR in the socket has significantly reduced the effect of sweat and volumetric changes on the performance of the sensor. Due to its novel design, embedded features, and cost-effectiveness the developed prototype holds the promise to be successfully commercialized to assist transradial amputees in becoming active citizens for contributing towards socio-economic growth of their country.
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spelling doaj.art-54210db0528b42f8b4a90a11752d3dc72022-12-21T22:52:41ZengIEEEIEEE Access2169-35362021-01-01913002013003110.1109/ACCESS.2021.31130299539224Design, Development and Evaluation of Novel Force Myography Based 2-Degree of Freedom Transradial ProsthesisMuhammad Usman Qadir0Izhar Ul Haq1https://orcid.org/0000-0003-4602-8597Muhammad Awais Khan2Mian Naveed Ahmad3Kamran Shah4Nizar Akhtar5Department of Mechatronics Engineering, Advanced Robotics and Automation Laboratory, University of Engineering & Technology, Peshawar, Peshawar, PakistanDepartment of Mechatronics Engineering, Advanced Robotics and Automation Laboratory, University of Engineering & Technology, Peshawar, Peshawar, PakistanDepartment of Mechatronics Engineering, Advanced Robotics and Automation Laboratory, University of Engineering & Technology, Peshawar, Peshawar, PakistanInstitute of Telematics, Technische Universität Hamburg (TUHH), Hamburg, GermanyDepartment of Mechatronics Engineering, Advanced Robotics and Automation Laboratory, University of Engineering & Technology, Peshawar, Peshawar, PakistanInternational Committee of the Red Cross, Sana’a, YemenLimb loss is a traumatic event as it has physical and psychological effects on an amputee. Recent advancements in mechatronics and biomedical engineering have resulted in development of dexterous myoelectric prostheses for rehabilitation of amputees. In addition, evolution in manufacturing and sensing technology presents ample room for improvement in mechanical design and control system of prostheses to enhance amputee experience while using prosthetic devices. The present study is focused on design of a novel and cost-effective externally powered two-degree-of freedom prosthesis for assisting amputees to switch from body-powered devices to externally powered prosthesis. The control system of the developed prosthesis is based on the muscles signals acquired through force myography (FMG) technique. For precise integration of force-sensitive resistor (FSR) inside the socket to measure muscle activity, a stand-alone housing for FSR was designed with the feature of mechanical adjustment to control sensitivity of FSR and auto-calibrate its threshold to meet the requirements of individual amputees. The housing was designed to handle the fabrication inconsistencies during socket shaping process and thus ensure that sensor is in-firm contact with the muscle to sense volumetric changes. The developed mechanical design and FMG based muscle acquisition technique was successfully tested on a transradial amputee and extensive experimentation was performed for characterization of the prosthesis. FMG signal for various gestures was successfully extracted from muscles of the amputee to control the prosthesis according to the developed control technique. The results suggested that integration of FSR in the socket has significantly reduced the effect of sweat and volumetric changes on the performance of the sensor. Due to its novel design, embedded features, and cost-effectiveness the developed prototype holds the promise to be successfully commercialized to assist transradial amputees in becoming active citizens for contributing towards socio-economic growth of their country.https://ieeexplore.ieee.org/document/9539224/Electromyographyforce myographytransradialprosthesisactive actuationmuscle pressure
spellingShingle Muhammad Usman Qadir
Izhar Ul Haq
Muhammad Awais Khan
Mian Naveed Ahmad
Kamran Shah
Nizar Akhtar
Design, Development and Evaluation of Novel Force Myography Based 2-Degree of Freedom Transradial Prosthesis
IEEE Access
Electromyography
force myography
transradial
prosthesis
active actuation
muscle pressure
title Design, Development and Evaluation of Novel Force Myography Based 2-Degree of Freedom Transradial Prosthesis
title_full Design, Development and Evaluation of Novel Force Myography Based 2-Degree of Freedom Transradial Prosthesis
title_fullStr Design, Development and Evaluation of Novel Force Myography Based 2-Degree of Freedom Transradial Prosthesis
title_full_unstemmed Design, Development and Evaluation of Novel Force Myography Based 2-Degree of Freedom Transradial Prosthesis
title_short Design, Development and Evaluation of Novel Force Myography Based 2-Degree of Freedom Transradial Prosthesis
title_sort design development and evaluation of novel force myography based 2 degree of freedom transradial prosthesis
topic Electromyography
force myography
transradial
prosthesis
active actuation
muscle pressure
url https://ieeexplore.ieee.org/document/9539224/
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AT muhammadawaiskhan designdevelopmentandevaluationofnovelforcemyographybased2degreeoffreedomtransradialprosthesis
AT miannaveedahmad designdevelopmentandevaluationofnovelforcemyographybased2degreeoffreedomtransradialprosthesis
AT kamranshah designdevelopmentandevaluationofnovelforcemyographybased2degreeoffreedomtransradialprosthesis
AT nizarakhtar designdevelopmentandevaluationofnovelforcemyographybased2degreeoffreedomtransradialprosthesis