Cargando…

The Influence of Severe Plastic Deformation on Microstructure and In Vitro Biocompatibility of the New Ti-Nb-Zr-Ta-Fe-O Alloy Composition

In this work, severe plastic deformation (SPD) of the newly designed Ti-Nb-Zr-Ta-Fe-O GUM metal was successfully conducted at room temperature using high speed high pressure torsion (HSHPT) followed by cold rolling (CR) to exploit the suitability of the processed alloy for bone staples. The Ti-31.5N...

Descripción completa

Detalles Bibliográficos
Autores principales: Gurau, Carmela, Gurau, Gheorghe, Mitran, Valentina, Dan, Alexandru, Cimpean, Anisoara
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7663053/
https://www.ncbi.nlm.nih.gov/pubmed/33138165
http://dx.doi.org/10.3390/ma13214853
_version_ 1783609537583906816
author Gurau, Carmela
Gurau, Gheorghe
Mitran, Valentina
Dan, Alexandru
Cimpean, Anisoara
author_facet Gurau, Carmela
Gurau, Gheorghe
Mitran, Valentina
Dan, Alexandru
Cimpean, Anisoara
author_sort Gurau, Carmela
collection PubMed
description In this work, severe plastic deformation (SPD) of the newly designed Ti-Nb-Zr-Ta-Fe-O GUM metal was successfully conducted at room temperature using high speed high pressure torsion (HSHPT) followed by cold rolling (CR) to exploit the suitability of the processed alloy for bone staples. The Ti-31.5Nb-3.1Zr-3.1Ta-0.9Fe-0.16O GUM alloy was fabricated in a levitation melting furnace using a cold crucible and argon protective atmosphere. The as-cast specimens were subjected to SPD, specifically HSHPT, and then processed by the CR method to take the advantages of both grain refinement and larger dimensions. This approach creates the opportunity to obtain temporary orthopedic implants nanostructured by SPD. The changes induced by HSHPT technology from the coarse dendrite directly into the ultrafine grained structure were examined by optical microscopy, scanning electron microscopy and X-ray diffraction. The structural investigations showed that by increasing the deformation, a high density of grain boundaries is accumulated, leading gradually to fine grain size. In addition, the in vitro biocompatibility studies were conducted in parallel on the GUM alloy specimens in the as-cast state, and after HSHPT- and HSHPT+CR- processing. For comparative purposes, in vitro behavior of the bone-derived MC3T3-E1 cells on the commercially pure titanium has also been investigated regarding the viability and proliferation, morphology and osteogenic differentiation. The results obtained support the appropriateness of the HSHPT technology for developing compression staples able to ensure a better fixation of bone fragments.
format Online
Article
Text
id pubmed-7663053
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-76630532020-11-14 The Influence of Severe Plastic Deformation on Microstructure and In Vitro Biocompatibility of the New Ti-Nb-Zr-Ta-Fe-O Alloy Composition Gurau, Carmela Gurau, Gheorghe Mitran, Valentina Dan, Alexandru Cimpean, Anisoara Materials (Basel) Article In this work, severe plastic deformation (SPD) of the newly designed Ti-Nb-Zr-Ta-Fe-O GUM metal was successfully conducted at room temperature using high speed high pressure torsion (HSHPT) followed by cold rolling (CR) to exploit the suitability of the processed alloy for bone staples. The Ti-31.5Nb-3.1Zr-3.1Ta-0.9Fe-0.16O GUM alloy was fabricated in a levitation melting furnace using a cold crucible and argon protective atmosphere. The as-cast specimens were subjected to SPD, specifically HSHPT, and then processed by the CR method to take the advantages of both grain refinement and larger dimensions. This approach creates the opportunity to obtain temporary orthopedic implants nanostructured by SPD. The changes induced by HSHPT technology from the coarse dendrite directly into the ultrafine grained structure were examined by optical microscopy, scanning electron microscopy and X-ray diffraction. The structural investigations showed that by increasing the deformation, a high density of grain boundaries is accumulated, leading gradually to fine grain size. In addition, the in vitro biocompatibility studies were conducted in parallel on the GUM alloy specimens in the as-cast state, and after HSHPT- and HSHPT+CR- processing. For comparative purposes, in vitro behavior of the bone-derived MC3T3-E1 cells on the commercially pure titanium has also been investigated regarding the viability and proliferation, morphology and osteogenic differentiation. The results obtained support the appropriateness of the HSHPT technology for developing compression staples able to ensure a better fixation of bone fragments. MDPI 2020-10-29 /pmc/articles/PMC7663053/ /pubmed/33138165 http://dx.doi.org/10.3390/ma13214853 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gurau, Carmela
Gurau, Gheorghe
Mitran, Valentina
Dan, Alexandru
Cimpean, Anisoara
The Influence of Severe Plastic Deformation on Microstructure and In Vitro Biocompatibility of the New Ti-Nb-Zr-Ta-Fe-O Alloy Composition
title The Influence of Severe Plastic Deformation on Microstructure and In Vitro Biocompatibility of the New Ti-Nb-Zr-Ta-Fe-O Alloy Composition
title_full The Influence of Severe Plastic Deformation on Microstructure and In Vitro Biocompatibility of the New Ti-Nb-Zr-Ta-Fe-O Alloy Composition
title_fullStr The Influence of Severe Plastic Deformation on Microstructure and In Vitro Biocompatibility of the New Ti-Nb-Zr-Ta-Fe-O Alloy Composition
title_full_unstemmed The Influence of Severe Plastic Deformation on Microstructure and In Vitro Biocompatibility of the New Ti-Nb-Zr-Ta-Fe-O Alloy Composition
title_short The Influence of Severe Plastic Deformation on Microstructure and In Vitro Biocompatibility of the New Ti-Nb-Zr-Ta-Fe-O Alloy Composition
title_sort influence of severe plastic deformation on microstructure and in vitro biocompatibility of the new ti-nb-zr-ta-fe-o alloy composition
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7663053/
https://www.ncbi.nlm.nih.gov/pubmed/33138165
http://dx.doi.org/10.3390/ma13214853
work_keys_str_mv AT guraucarmela theinfluenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition
AT guraugheorghe theinfluenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition
AT mitranvalentina theinfluenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition
AT danalexandru theinfluenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition
AT cimpeananisoara theinfluenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition
AT guraucarmela influenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition
AT guraugheorghe influenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition
AT mitranvalentina influenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition
AT danalexandru influenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition
AT cimpeananisoara influenceofsevereplasticdeformationonmicrostructureandinvitrobiocompatibilityofthenewtinbzrtafeoalloycomposition