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Microstructural Strengthening-Toughening Mechanisms and Multi-application Development of Modern Titanium Alloys

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DOI: 10.23977/jmpd.2026.100113 | Downloads: 0 | Views: 14

Author(s)

Xiao Yuan 1

Affiliation(s)

1 National Academy of Excellent Engineers, University of Science and Technology Beijing, Beijing, China

Corresponding Author

Xiao Yuan

ABSTRACT

Titanium alloys boast low density, high specific strength, excellent corrosion resistance and favorable biocompatibility, occupying a strategic position in aerospace, deep-sea equipment, biomedical engineering and new energy sectors, and thus are highly favored by designers and researchers worldwide. Nevertheless, three long-standing bottlenecks have restricted the advancement of titanium alloys for decades: the trade-off between strength and ductility, poor machinability, and susceptibility to extreme service environments. Over the past five years, researchers have made breakthroughs addressing these challenges via metastable microstructure engineering, additive manufacturing, microtexture orientation modulation, intelligent heat treatment and other technical approaches. From the two core perspectives of microstructure regulation and strengthening-toughening mechanisms, this paper elaborates on key scientific issues including heterogeneous laminated structure design, interstitial solid-solution strengthening, phase transformation and nanocrystallization under dynamic loading, as well as room-temperature impact toughness control. Combined with experimental data from published literatures, it further clarifies the physical essence of the microstructure-property relationship. Finally, this work prospects future development opportunities and research directions for titanium alloys, offering references for follow-up research in this field.

KEYWORDS

Titanium alloy; Microstructure regulation; Strengthening and toughening mechanism; Additive manufacturing; Metastable engineering; Microtexture

CITE THIS PAPER

Xiao Yuan. Microstructural Strengthening-Toughening Mechanisms and Multi-application Development of Modern Titanium Alloys. Journal of Materials, Processing and Design (2026). Vol. 10, No. 1, 100-109. DOI: http://dx.doi.org/10.23977/jmpd.2026.100113.

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