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Effects of Aging on the Microstructure and Mechanical Properties of Metastable β-type Ti-23.6Nb-5.1Mo-6.7Zr Alloy with Low Elastic Modulus

Aline Raquel Vieira Nunes, Sinara Borborema, Caio Marcello F. Azevedo Cossú,Leonardo Sales Araújo,Jean Dille,Loïc Malet, Michael J. Kaufman,Luiz Henrique de Almeida

Journal of Materials Research and Technology(2024)

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Abstract
In this study, the influence of thermomechanical treatments on the microstructure and mechanical properties of a new metastable β-titanium Ti-23.6Nb-5.1Mo-6.7Zr alloy was assessed. The objective was to determine if the alloy is a potential candidate for a future fabrication of orthopedic implants, in particular prosthetic hip stems with a functional gradient of mechanical properties. Two thermomechanical processing routes were investigated: (a) 90% cold-rolled, (b) 90% cold-rolled, followed by annealing at 950°C for 1h. After these initial processing steps, samples were aged between 300°C and 500°C from 0.5h to 4h. Microstructural characterization was conducted by optical microscopy, transmission electron microscopy and x-ray diffraction. Young’s modulus and microhardness were measured. Young’s modulus of the sample annealed after cold rolling is lower than that after the cold rolled one. Aging was effective at increasing hardness but also increasing Young’s modulus. The hardening during aging resulted from fine ωiso and α precipitation. The transmission electron microscopy investigations indicated that an aging treatment at 500°C leads to a fine (α + β) microstructure, avoiding brittle ωiso precipitation. For these reasons, this alloy is a potential candidate for the manufacture of a hybrid hip prosthetic stem by employing localized aging treatment at 500°C in the neck region, creating a functional strength gradient and maintaining a low Young’s modulus in the distal part, which is needed to mitigate the stress shielding of the bone.
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Key words
titanium alloys,thermomechanical treatments,microstructure,phases,low Young’s modulus,orthopedic implants
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