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Enhancing the elevated temperature strength of titanium matrix composites through a novel (α + β) TRIPLEX heat treatment.

Authors :
Wu, Jingxi
Chen, Yuyong
Du, Zhiming
Xie, Huasheng
Liu, Shibing
Peng, Qingjun
Li, Kefeng
Source :
Materials Science & Engineering: A. Jan2024, Vol. 890, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

In this work, an (α + β) TRIPLEX heat treatment process was designed, as well as its impact on the microstructures and high–temperature mechanical properties of 2.5 vol% (TiB + TiC)/Ti–6Al–4Sn–7Zr–1Nb–1Mo–1W–0.2Si (wt.%) was carefully investigated. The results show that the microstructures of heat–treated TMCs consist of the primary α phase (α p) and the transformed β (β t) with a large number of nano–scale secondary α phases (α s). The TRIPLEX heat treatment encourages the effect of structural heredity, causing the residual α p lamellae to develop adequately and even mature into lamellae clusters with the same orientation, which induces a visible strengthening of the variant selection for the α phase. After the TRIPLEX heat treatment, the increase in content and size of silicides is mainly due to the process providing favorable sites and sufficient time for nucleation and growth. The longitudinal axes of some silicides exhibit an approximate 40° angle or parallel arrangement with the β/α p interfaces, which means that the silicides will grow preferentially along a specific orientation to minimize the strain energy. The (α + β) TRIPLEX heat treatment significantly increases the high–temperature strength of the TMCs with no appreciable elongation loss (as–cast TMCs: UTS = 487.6 MPa, EL = 17.4%; HT–4#: UTS = 558.1 MPa, EL = 11.5%). The strength improvement of HT–4 # is mainly related to the combined effects of α p content reduction, α s precipitation, obstruction of dislocations by the β t /α p interface, hetero–deformation strengthening, silicides precipitation strengthening, and α 2 dispersion strengthening. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09215093
Volume :
890
Database :
Academic Search Index
Journal :
Materials Science & Engineering: A
Publication Type :
Academic Journal
Accession number :
174410932
Full Text :
https://doi.org/10.1016/j.msea.2023.145884