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Usage of shape memory alloy actuators for large force active disassembly applications

Shape memory alloys (SMAs) possess inherent superior properties that make their applications in active disassembly an emerging and interesting field of research. This is because extremely large forces can be generated repeatedly using a small compact-sized element, such as an SMA actuator. To ensure...

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Detalles Bibliográficos
Autores principales: Abuzied, Hoda, Abbas, Ayman, Awad, Mohamed, Senbel, Hesham
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7426572/
https://www.ncbi.nlm.nih.gov/pubmed/32817890
http://dx.doi.org/10.1016/j.heliyon.2020.e04611
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author Abuzied, Hoda
Abbas, Ayman
Awad, Mohamed
Senbel, Hesham
author_facet Abuzied, Hoda
Abbas, Ayman
Awad, Mohamed
Senbel, Hesham
author_sort Abuzied, Hoda
collection PubMed
description Shape memory alloys (SMAs) possess inherent superior properties that make their applications in active disassembly an emerging and interesting field of research. This is because extremely large forces can be generated repeatedly using a small compact-sized element, such as an SMA actuator. To ensure the ability of the SMA actuator to generate a repeated large force or withstand repeated load, several factors should be considered. These include factors that affect the value of the generated recovery forces, such as the amount of strain used, activation temperature, activation time, and cross-sectional area of the SMA element. In general, the compressive strain can be considered as the most influential factor that affects the value of the generated recovery force. The present research investigates the possible use of the SMA actuator in large-force active disassembly applications. To the best of the authors' knowledge, all the studies conducted in this field are concerned with implementing active disassembly in applications requiring small disassembly forces. The present research was conducted in three phases. First, the behaviour of the SMA element upon exposure to different repetitive compressive strains was studied, and the generated recovery force and strain hardening induced in the material were considered to ensure the continuous generation of large recovery forces with the least amount of residual strain induced in the material. Second, the optimum value of the compressive strain required to generate the maximum force with the least amount of residual strain induced in the material was estimated. Third, a practical case study was presented to validate the possible implementation of SMA actuators in large force active disassembly applications. The study successfully estimated the optimum compressive strain value that generated the required recovery force to disassemble the conducted case study using active disassembly technique.
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spelling pubmed-74265722020-08-16 Usage of shape memory alloy actuators for large force active disassembly applications Abuzied, Hoda Abbas, Ayman Awad, Mohamed Senbel, Hesham Heliyon Article Shape memory alloys (SMAs) possess inherent superior properties that make their applications in active disassembly an emerging and interesting field of research. This is because extremely large forces can be generated repeatedly using a small compact-sized element, such as an SMA actuator. To ensure the ability of the SMA actuator to generate a repeated large force or withstand repeated load, several factors should be considered. These include factors that affect the value of the generated recovery forces, such as the amount of strain used, activation temperature, activation time, and cross-sectional area of the SMA element. In general, the compressive strain can be considered as the most influential factor that affects the value of the generated recovery force. The present research investigates the possible use of the SMA actuator in large-force active disassembly applications. To the best of the authors' knowledge, all the studies conducted in this field are concerned with implementing active disassembly in applications requiring small disassembly forces. The present research was conducted in three phases. First, the behaviour of the SMA element upon exposure to different repetitive compressive strains was studied, and the generated recovery force and strain hardening induced in the material were considered to ensure the continuous generation of large recovery forces with the least amount of residual strain induced in the material. Second, the optimum value of the compressive strain required to generate the maximum force with the least amount of residual strain induced in the material was estimated. Third, a practical case study was presented to validate the possible implementation of SMA actuators in large force active disassembly applications. The study successfully estimated the optimum compressive strain value that generated the required recovery force to disassemble the conducted case study using active disassembly technique. Elsevier 2020-08-12 /pmc/articles/PMC7426572/ /pubmed/32817890 http://dx.doi.org/10.1016/j.heliyon.2020.e04611 Text en © 2020 Published by Elsevier Ltd. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Abuzied, Hoda
Abbas, Ayman
Awad, Mohamed
Senbel, Hesham
Usage of shape memory alloy actuators for large force active disassembly applications
title Usage of shape memory alloy actuators for large force active disassembly applications
title_full Usage of shape memory alloy actuators for large force active disassembly applications
title_fullStr Usage of shape memory alloy actuators for large force active disassembly applications
title_full_unstemmed Usage of shape memory alloy actuators for large force active disassembly applications
title_short Usage of shape memory alloy actuators for large force active disassembly applications
title_sort usage of shape memory alloy actuators for large force active disassembly applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7426572/
https://www.ncbi.nlm.nih.gov/pubmed/32817890
http://dx.doi.org/10.1016/j.heliyon.2020.e04611
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