Biocompatible magnesium alloy ZNdK100—Adaptation of extrusion parameters to tailor the mechanical properties to different implant applications

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OriginalspracheEnglisch
Titel des SammelwerksMagnesium Technology 2017
Herausgeber/-innenNeale R. Neelameggham, Alok Singh, Kiran N. Solanki, Dmytro Orlov
Herausgeber (Verlag)Springer International Publishing AG
Seiten323-327
Seitenumfang5
ISBN (Print)9783319523910
PublikationsstatusVeröffentlicht - 16 Feb. 2017
VeranstaltungInternational Symposium on Magnesium Technology, 2017 - San Diego, USA / Vereinigte Staaten
Dauer: 26 Feb. 20172 März 2017

Publikationsreihe

NameMinerals, Metals and Materials Series
BandPart F8
ISSN (Print)2367-1181
ISSN (elektronisch)2367-1696

Abstract

Neodymium containing magnesium alloys like MgNd2 and ZNdK100 offer high corrosion resistance and biocompatibility due to low amounts of alloying elements, and are thus attractive for biomedical applications. Compared with common bioresorbable magnesium alloys, which frequently contain mischmetal, the use of neodymium as a single rare earth element provides for good reproducibility of the degradation behavior while improving the ductility, leading to high fracture strains of 25–30%. Thus, stents made from these alloys allowed dilatation without failure. The MgNd2 alloy’s strength, however, turned out to be low. Recent investigations proved that the strength of a ZNdK100 alloy can be significantly increased by an adaptation of the extrusion parameters, such as billet temperature and extrusion ratio, which govern recrystallization of the microstructure. In the current study, it is demonstrated how the mechanical properties can be adjusted by the extrusion process, allowing the future use of the same alloy for both bone implants and soft tissue implants.

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Biocompatible magnesium alloy ZNdK100—Adaptation of extrusion parameters to tailor the mechanical properties to different implant applications. / Eifler, Rainer; Schäfke, Florian; Maier, Hans Jürgen et al.
Magnesium Technology 2017. Hrsg. / Neale R. Neelameggham; Alok Singh; Kiran N. Solanki; Dmytro Orlov. Springer International Publishing AG, 2017. S. 323-327 (Minerals, Metals and Materials Series; Band Part F8).

Publikation: Beitrag in Buch/Bericht/Sammelwerk/KonferenzbandAufsatz in KonferenzbandForschungPeer-Review

Eifler, R, Schäfke, F, Maier, HJ & Klose, C 2017, Biocompatible magnesium alloy ZNdK100—Adaptation of extrusion parameters to tailor the mechanical properties to different implant applications. in NR Neelameggham, A Singh, KN Solanki & D Orlov (Hrsg.), Magnesium Technology 2017. Minerals, Metals and Materials Series, Bd. Part F8, Springer International Publishing AG, S. 323-327, International Symposium on Magnesium Technology, 2017, San Diego, USA / Vereinigte Staaten, 26 Feb. 2017. https://doi.org/10.1007/978-3-319-52392-7_46
Eifler, R., Schäfke, F., Maier, H. J., & Klose, C. (2017). Biocompatible magnesium alloy ZNdK100—Adaptation of extrusion parameters to tailor the mechanical properties to different implant applications. In N. R. Neelameggham, A. Singh, K. N. Solanki, & D. Orlov (Hrsg.), Magnesium Technology 2017 (S. 323-327). (Minerals, Metals and Materials Series; Band Part F8). Springer International Publishing AG. https://doi.org/10.1007/978-3-319-52392-7_46
Eifler R, Schäfke F, Maier HJ, Klose C. Biocompatible magnesium alloy ZNdK100—Adaptation of extrusion parameters to tailor the mechanical properties to different implant applications. in Neelameggham NR, Singh A, Solanki KN, Orlov D, Hrsg., Magnesium Technology 2017. Springer International Publishing AG. 2017. S. 323-327. (Minerals, Metals and Materials Series). doi: 10.1007/978-3-319-52392-7_46
Eifler, Rainer ; Schäfke, Florian ; Maier, Hans Jürgen et al. / Biocompatible magnesium alloy ZNdK100—Adaptation of extrusion parameters to tailor the mechanical properties to different implant applications. Magnesium Technology 2017. Hrsg. / Neale R. Neelameggham ; Alok Singh ; Kiran N. Solanki ; Dmytro Orlov. Springer International Publishing AG, 2017. S. 323-327 (Minerals, Metals and Materials Series).
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abstract = "Neodymium containing magnesium alloys like MgNd2 and ZNdK100 offer high corrosion resistance and biocompatibility due to low amounts of alloying elements, and are thus attractive for biomedical applications. Compared with common bioresorbable magnesium alloys, which frequently contain mischmetal, the use of neodymium as a single rare earth element provides for good reproducibility of the degradation behavior while improving the ductility, leading to high fracture strains of 25–30%. Thus, stents made from these alloys allowed dilatation without failure. The MgNd2 alloy{\textquoteright}s strength, however, turned out to be low. Recent investigations proved that the strength of a ZNdK100 alloy can be significantly increased by an adaptation of the extrusion parameters, such as billet temperature and extrusion ratio, which govern recrystallization of the microstructure. In the current study, it is demonstrated how the mechanical properties can be adjusted by the extrusion process, allowing the future use of the same alloy for both bone implants and soft tissue implants.",
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AU - Schäfke, Florian

AU - Maier, Hans Jürgen

AU - Klose, Christian

N1 - Funding information: Part of this research was sponsored by the German Research Foundation (DFG) within the subproject R1 of the Collaborative Research Centre SFB 599.

PY - 2017/2/16

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N2 - Neodymium containing magnesium alloys like MgNd2 and ZNdK100 offer high corrosion resistance and biocompatibility due to low amounts of alloying elements, and are thus attractive for biomedical applications. Compared with common bioresorbable magnesium alloys, which frequently contain mischmetal, the use of neodymium as a single rare earth element provides for good reproducibility of the degradation behavior while improving the ductility, leading to high fracture strains of 25–30%. Thus, stents made from these alloys allowed dilatation without failure. The MgNd2 alloy’s strength, however, turned out to be low. Recent investigations proved that the strength of a ZNdK100 alloy can be significantly increased by an adaptation of the extrusion parameters, such as billet temperature and extrusion ratio, which govern recrystallization of the microstructure. In the current study, it is demonstrated how the mechanical properties can be adjusted by the extrusion process, allowing the future use of the same alloy for both bone implants and soft tissue implants.

AB - Neodymium containing magnesium alloys like MgNd2 and ZNdK100 offer high corrosion resistance and biocompatibility due to low amounts of alloying elements, and are thus attractive for biomedical applications. Compared with common bioresorbable magnesium alloys, which frequently contain mischmetal, the use of neodymium as a single rare earth element provides for good reproducibility of the degradation behavior while improving the ductility, leading to high fracture strains of 25–30%. Thus, stents made from these alloys allowed dilatation without failure. The MgNd2 alloy’s strength, however, turned out to be low. Recent investigations proved that the strength of a ZNdK100 alloy can be significantly increased by an adaptation of the extrusion parameters, such as billet temperature and extrusion ratio, which govern recrystallization of the microstructure. In the current study, it is demonstrated how the mechanical properties can be adjusted by the extrusion process, allowing the future use of the same alloy for both bone implants and soft tissue implants.

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