Wide Range Mechanical Customization of Mg-Gd Alloys With Low Degradation Rates by Extrusion

Currently, only a few magnesium alloys have been approved for implant applications. For biomedical purposes, the choice of the alloying elements is a critical parameter and rare earth elements have been proven to be mechanically suitable and biologically tolerable. In this comprehensive study, tailo...

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Main Authors: Jochen Harmuth, Björn Wiese, Jan Bohlen, Thomas Ebel, Regine Willumeit-Römer
Format: Article
Language:English
Published: Frontiers Media S.A. 2019-08-01
Series:Frontiers in Materials
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fmats.2019.00201/full
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spelling doaj-dca40409647d4ab6b956992b3ada4d6e2020-11-24T21:29:16ZengFrontiers Media S.A.Frontiers in Materials2296-80162019-08-01610.3389/fmats.2019.00201474237Wide Range Mechanical Customization of Mg-Gd Alloys With Low Degradation Rates by ExtrusionJochen Harmuth0Björn Wiese1Jan Bohlen2Thomas Ebel3Regine Willumeit-Römer4Metallic Biomaterials, Institute of Materials Research, Helmholtz-Zentrum Geesthacht, Geesthacht, GermanyMetallic Biomaterials, Institute of Materials Research, Helmholtz-Zentrum Geesthacht, Geesthacht, GermanyMagnesium Innovation Centre MagIC, Institute of Materials Research, Helmholtz-Zentrum Geesthacht, Geesthacht, GermanyMetallic Biomaterials, Institute of Materials Research, Helmholtz-Zentrum Geesthacht, Geesthacht, GermanyMetallic Biomaterials, Institute of Materials Research, Helmholtz-Zentrum Geesthacht, Geesthacht, GermanyCurrently, only a few magnesium alloys have been approved for implant applications. For biomedical purposes, the choice of the alloying elements is a critical parameter and rare earth elements have been proven to be mechanically suitable and biologically tolerable. In this comprehensive study, tailoring the mechanical properties of binary Mg-Gd alloys by indirect extrusion is shown to obtain a property profile that is applicable to different biomedical applications. Mg-2Gd, Mg-5Gd, and Mg-10Gd were solid solution treated before extrusion. For each alloy various combinations of extrusion temperature and speed were applied. Resulting effects of alloy composition and processing on microstructure development, texture evolution, mechanical properties, and degradation behavior were investigated. Grain sizes and corresponding textures were adjusted by the extrusion parameters. Despite changes in the texture, grain boundary strengthening effects were confirmed for all alloys in accordance with the Hall-Petch relationship. The alloy composition contributed to the mechanical properties by solid solution strengthening and a combination of texture changes and slip activities. Consequently, mechanical properties can be tailored within a wide range resulting in tensile yield strengths of 90 to 200 MPa (ultimate tensile strengths 180–280 MPa) and compressive yield strengths of 80 to 220 MPa (ultimate compressive strengths 300–450 MPa) with elongations of 10–45%. Low degradation rates in the range of 0.2 mm/year were determined for all alloys. Degradation was only slightly influenced by the alloy composition but not affected by processing. Overall, the properties of Mg-Gd determined in this work appear to be suitable to future implant applications.https://www.frontiersin.org/article/10.3389/fmats.2019.00201/fullextrusionbiomaterialmechanical propertiesdegradationgadoliniumrare earth elements
collection DOAJ
language English
format Article
sources DOAJ
author Jochen Harmuth
Björn Wiese
Jan Bohlen
Thomas Ebel
Regine Willumeit-Römer
spellingShingle Jochen Harmuth
Björn Wiese
Jan Bohlen
Thomas Ebel
Regine Willumeit-Römer
Wide Range Mechanical Customization of Mg-Gd Alloys With Low Degradation Rates by Extrusion
Frontiers in Materials
extrusion
biomaterial
mechanical properties
degradation
gadolinium
rare earth elements
author_facet Jochen Harmuth
Björn Wiese
Jan Bohlen
Thomas Ebel
Regine Willumeit-Römer
author_sort Jochen Harmuth
title Wide Range Mechanical Customization of Mg-Gd Alloys With Low Degradation Rates by Extrusion
title_short Wide Range Mechanical Customization of Mg-Gd Alloys With Low Degradation Rates by Extrusion
title_full Wide Range Mechanical Customization of Mg-Gd Alloys With Low Degradation Rates by Extrusion
title_fullStr Wide Range Mechanical Customization of Mg-Gd Alloys With Low Degradation Rates by Extrusion
title_full_unstemmed Wide Range Mechanical Customization of Mg-Gd Alloys With Low Degradation Rates by Extrusion
title_sort wide range mechanical customization of mg-gd alloys with low degradation rates by extrusion
publisher Frontiers Media S.A.
series Frontiers in Materials
issn 2296-8016
publishDate 2019-08-01
description Currently, only a few magnesium alloys have been approved for implant applications. For biomedical purposes, the choice of the alloying elements is a critical parameter and rare earth elements have been proven to be mechanically suitable and biologically tolerable. In this comprehensive study, tailoring the mechanical properties of binary Mg-Gd alloys by indirect extrusion is shown to obtain a property profile that is applicable to different biomedical applications. Mg-2Gd, Mg-5Gd, and Mg-10Gd were solid solution treated before extrusion. For each alloy various combinations of extrusion temperature and speed were applied. Resulting effects of alloy composition and processing on microstructure development, texture evolution, mechanical properties, and degradation behavior were investigated. Grain sizes and corresponding textures were adjusted by the extrusion parameters. Despite changes in the texture, grain boundary strengthening effects were confirmed for all alloys in accordance with the Hall-Petch relationship. The alloy composition contributed to the mechanical properties by solid solution strengthening and a combination of texture changes and slip activities. Consequently, mechanical properties can be tailored within a wide range resulting in tensile yield strengths of 90 to 200 MPa (ultimate tensile strengths 180–280 MPa) and compressive yield strengths of 80 to 220 MPa (ultimate compressive strengths 300–450 MPa) with elongations of 10–45%. Low degradation rates in the range of 0.2 mm/year were determined for all alloys. Degradation was only slightly influenced by the alloy composition but not affected by processing. Overall, the properties of Mg-Gd determined in this work appear to be suitable to future implant applications.
topic extrusion
biomaterial
mechanical properties
degradation
gadolinium
rare earth elements
url https://www.frontiersin.org/article/10.3389/fmats.2019.00201/full
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