4.6 Article

Recent Advances in the Design of Novel β-Titanium Alloys Using Integrated Theory, Computer Simulation, and Advanced Characterization

Journal

ADVANCED ENGINEERING MATERIALS
Volume 23, Issue 8, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adem.202100152

Keywords

microstructure refinement; nonconventional transformation pathways; titanium alloys; transformation-induced plasticity; twinning-induced plasticity

Funding

  1. US Department of Energy by the Lawrence Livermore National Laboratory [DE-AC52-07NA27344]
  2. Office of Laboratory Directed Research and Development [20-SI-004]
  3. Jilin University
  4. University of Nevada Reno

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Metastable beta-titanium alloys are widely used in various industries due to their high specific strength, superior corrosion resistance, and excellent biocompatibility. Recent studies have obtained fundamental insights in designing strategies through exploring different solid-state phase transformation and deformation pathways, indicating promising future research directions for the development of these alloys.
Metastable beta-titanium (beta-Ti) alloys, because of their combination of high specific strength, superior corrosion resistance, and excellent biocompatibility, have found increasingly widespread application in aerospace, automobile, biomedical, and chemical industries. Many different pathways, available for phase transformation and deformation between a high-temperature beta and a low-temperature alpha phase, provide ample opportunities to engineer the desired microstructure through thermal mechanical processing for optimal properties targeting specific applications. Based on an integrated approach (theory, crystallography, multiscale modeling, and advanced characterization), recent studies have obtained fundamental insights in both designing strategies by exploring a variety of nonconventional solid-state phase transformation and deformation pathways, including 1) pseudospinodal decomposition; 2) precursory omega-phase-assisted alpha precipitation with a wide range of tunable size scales and number densities; and 3) abnormal high-index deformation twinning modes. Herein, the revolutionary new concepts for alloy development and deployment and the underlying physical mechanisms are reviewed in detail. Perspectives on the future research directions in the development of metastable beta-Ti alloys are also offered. The mechanisms and alloy design concepts as well as the advantage of using state-of-the-art computational and characterization tools in a correlative manner for alloy design are applicable to a wide range of metallic materials beyond Ti alloys.

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