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Effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application

Pure iron has been demonstrated as a potential candidate for biodegradable metal stents due to its appropriate biocompatibility, suitable mechanical properties and uniform biodegradation behavior. The competing parameters that control the safety and the performance of BMS include proper strength-duc...

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Autores principales: Obayi, Camillus Sunday, Tolouei, Ranna, Mostavan, Afghany, Paternoster, Carlo, Turgeon, Stephane, Okorie, Boniface Adeleh, Obikwelu, Daniel Oray, Mantovani, Diego
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5055204/
https://www.ncbi.nlm.nih.gov/pubmed/25482336
http://dx.doi.org/10.4161/21592527.2014.959874
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author Obayi, Camillus Sunday
Tolouei, Ranna
Mostavan, Afghany
Paternoster, Carlo
Turgeon, Stephane
Okorie, Boniface Adeleh
Obikwelu, Daniel Oray
Mantovani, Diego
author_facet Obayi, Camillus Sunday
Tolouei, Ranna
Mostavan, Afghany
Paternoster, Carlo
Turgeon, Stephane
Okorie, Boniface Adeleh
Obikwelu, Daniel Oray
Mantovani, Diego
author_sort Obayi, Camillus Sunday
collection PubMed
description Pure iron has been demonstrated as a potential candidate for biodegradable metal stents due to its appropriate biocompatibility, suitable mechanical properties and uniform biodegradation behavior. The competing parameters that control the safety and the performance of BMS include proper strength-ductility combination, biocompatibility along with matching rate of corrosion with healing rate of arteries. Being a micrometre-scale biomedical device, the mentioned variables have been found to be governed by the average grain size of the bulk material. Thermo-mechanical processing techniques of the cold rolling and annealing were used to grain-refine the pure iron. Pure Fe samples were unidirectionally cold rolled and then isochronally annealed at different temperatures with the intention of inducing different ranges of grain size. The effect of thermo-mechanical treatment on mechanical properties and corrosion rates of the samples were investigated, correspondingly. Mechanical properties of pure Fe samples improved significantly with decrease in grain size while the corrosion rate decreased marginally with decrease in the average grain sizes. These findings could lead to the optimization of the properties to attain an adequate biodegradation-strength-ductility balance.
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spelling pubmed-50552042016-10-10 Effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application Obayi, Camillus Sunday Tolouei, Ranna Mostavan, Afghany Paternoster, Carlo Turgeon, Stephane Okorie, Boniface Adeleh Obikwelu, Daniel Oray Mantovani, Diego Biomatter Report Pure iron has been demonstrated as a potential candidate for biodegradable metal stents due to its appropriate biocompatibility, suitable mechanical properties and uniform biodegradation behavior. The competing parameters that control the safety and the performance of BMS include proper strength-ductility combination, biocompatibility along with matching rate of corrosion with healing rate of arteries. Being a micrometre-scale biomedical device, the mentioned variables have been found to be governed by the average grain size of the bulk material. Thermo-mechanical processing techniques of the cold rolling and annealing were used to grain-refine the pure iron. Pure Fe samples were unidirectionally cold rolled and then isochronally annealed at different temperatures with the intention of inducing different ranges of grain size. The effect of thermo-mechanical treatment on mechanical properties and corrosion rates of the samples were investigated, correspondingly. Mechanical properties of pure Fe samples improved significantly with decrease in grain size while the corrosion rate decreased marginally with decrease in the average grain sizes. These findings could lead to the optimization of the properties to attain an adequate biodegradation-strength-ductility balance. Taylor & Francis 2014-10-30 /pmc/articles/PMC5055204/ /pubmed/25482336 http://dx.doi.org/10.4161/21592527.2014.959874 Text en © 2016 The Author(s). Published with license by Taylor & Francis Group, LLC http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-Non-Commercial License http://creativecommons.org/licenses/by-nc/3.0/, which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited. The moral rights of the named author(s) have been asserted.
spellingShingle Report
Obayi, Camillus Sunday
Tolouei, Ranna
Mostavan, Afghany
Paternoster, Carlo
Turgeon, Stephane
Okorie, Boniface Adeleh
Obikwelu, Daniel Oray
Mantovani, Diego
Effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application
title Effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application
title_full Effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application
title_fullStr Effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application
title_full_unstemmed Effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application
title_short Effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application
title_sort effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application
topic Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5055204/
https://www.ncbi.nlm.nih.gov/pubmed/25482336
http://dx.doi.org/10.4161/21592527.2014.959874
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