A Review of Metastable Beta Titanium Alloys
Обзор метастабильных β-титановых сплавов
2018-06-30
SCID: 54.1/wz8q98vq
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additive manufacturingbeta titanium alloysmetastable beta titanium alloysstress-induced transformationsthermo-mechanical processing
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Abstract (AI)
In this article, we provide a broad and extensive review of beta titanium alloys. Beta titanium alloys are an important class of alloys that have found use in demanding applications such as aircraft structures and engines, and orthopedic and orthodontic implants. Their high strength, good corrosion resistance, excellent biocompatibility, and ease of fabrication provide significant advantages compared to other high performance alloys. The body-centered cubic (bcc) β-phase is metastable at temperatures below the beta transus temperature, providing these alloys with a wide range of microstructures and mechanical properties through processing and heat treatment. One attribute important for biomedical applications is the ability to adjust the modulus of elasticity through alloying and altering phase volume fractions. Furthermore, since these alloys are metastable, they experience stress-induced transformations in response to deformation. The attributes of these alloys make them the subject of many recent studies. In addition, researchers are pursuing development of new metastable and near-beta Ti alloys for advanced applications. In this article, we review several important topics of these alloys including phase stability, development history, thermo-mechanical processing and heat treatment, and stress-induced transformations. In addition, we address recent developments in new alloys, phase stability, superelasticity, and additive manufacturing.
Key Findings
1
Alloying and adjusting phase volume fractions can tune elastic modulus, an important capability for orthopedic and orthodontic implants.
2
Metastability permits stress-induced phase transformations during deformation, supporting distinctive mechanical responses such as superelasticity.
3
Metastable beta titanium alloys combine high strength, corrosion resistance, biocompatibility, and fabricability for aerospace and biomedical applications.
4
The metastable body-centered cubic beta phase enables broad control of microstructures and mechanical properties through thermomechanical processing and heat treatment.
5
The review covers phase stability, alloy development, processing, heat treatment, stress-induced transformations, and emerging applications including additive manufacturing.
Research Object
metastable beta titanium alloys
Research Subject
phase stability, processing–microstructure–property relationships, mechanical behavior, and stress-induced transformations of metastable beta titanium alloys
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2018-06-30
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