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Combined severe plastic deformation processing of commercial purity titanium enables superior fatigue resistance for next generation implants.
Kopp, Alexander; Werner, Jonas; Kröger, Nadja; Weirich, Thomas E; D'Elia, Francesco.
Afiliação
  • Kopp A; Meotec GmbH, Aachen 52068, Germany. Electronic address: alexander.kopp@meotec.eu.
  • Werner J; Central Facility for Electron Microscopy RWTH-Aachen, Aachen 52074, Germany. Electronic address: werner@gfe.rwth-aachen.de.
  • Kröger N; Institute for Laboratory Animal Science and Experimental Surgery, Faculty of Medicine, RWTH-Aachen University, 52074 Aachen, Germany; Clinic for Plastic and Aesthetic Surgery, Hand and Reconstructive Surgery, St. Antonius Hospital Eschweiler, 52249 Eschweiler, Germany. Electronic address: nadjamaria
  • Weirich TE; Central Facility for Electron Microscopy RWTH-Aachen, Aachen 52074, Germany. Electronic address: weirich@gfe.rwth-aachen.de.
  • D'Elia F; Meotec GmbH, Aachen 52068, Germany; Department of Materials Science and Engineering, Division of Biomedical Engineering, Uppsala University, Uppsala 75120, Sweden. Electronic address: francesco.delia@angstrom.uu.se.
Biomater Adv ; 157: 213756, 2024 Feb.
Article em En | MEDLINE | ID: mdl-38211508
ABSTRACT
Commercial purity titanium (cp-Ti) is considered for replacing Ti64 as an implant material in various applications, due to the potential toxicity associated with the release of Al and V ions. However, the mechanical properties of cp-Ti, particularly fatigue resistance, are inadequate for this purpose. In this study, cp-Ti grade 4 rods were processed using a combination of equal channel angular pressing and rotary swaging (ECAP/RS). Tensile and fatigue tests were conducted, along with detailed microscopy and evaluation of corrosion resistance and biocompatibility. An average yield strength of 1383 MPa was obtained while maintaining moderate ductility of 10 %. This represents the highest strength ever recorded for cp-Ti, even exceeding that of Ti64. Additionally, fatigue endurance limit increased by 43 % up to 600 MPa, almost obtaining that of Ti64. Strengthening mechanisms were attributed to the ultrafine-grained (UFG) microstructure generated by ECAP/RS, along with strong crystallographic texture and formation of sub-grain structure. Furthermore, the corrosion resistance and biocompatibility of cp-Ti were largely unaffected, potentially easing regulatory transition in future medical devices. Thus, these results demonstrate high potential of combined ECAP/RS processing to manufacture UFG cp-Ti grade 4 materials that prospectively allow for the substitution of questionable alloys and downsizing of medical implants.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Próteses e Implantes / Titânio Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Próteses e Implantes / Titânio Idioma: En Ano de publicação: 2024 Tipo de documento: Article