Back to Search Start Over

Mechanical properties of the (Ti0.615Zr0.385)100–3.9x(Cu2.3Fe1.6)x alloys containing amorphous martensite.

Authors :
Li, Biao
Zhang, Long
Yan, Tingyi
Fu, Huameng
Zhang, Hongwei
Li, Hong
Zhang, Haifeng
Source :
Journal of Alloys & Compounds. Oct2023, Vol. 958, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Martensitic amorphization is a novel phenomenon of solid-state amorphization firstly reported in metastable β-Ti alloys. However, the mechanical properties of the β-Ti alloys containing intragranular amorphous martensite remain unexplored. In this work, the microstructures, compressive and tensile properties of the (Ti 0.615 Zr 0.385) 100–3.9 x (Cu 2.3 Fe 1.6) x alloys were investigated. It is found that martensitic amorphization exists in the as-cast Ti 59.1 Zr 37 Cu 2.3 Fe 1.6 (x = 1) alloy. During compression, deformation-induced β-Ti to α″-Ti martensitic transformation takes place in the alloy with x = 1. With increasing x , the deformation-induced martensitic transformation of β→α″ is fully suppressed due to the increased phase stability. The Ti 59.1 Zr 37 Cu 2.3 Fe 1.6 alloy with amorphous martensite exhibits the highest yield strength during compression, which is attributed to the strong blocking effect of the dislocation glide by the intragranular amorphous phase. However, the Ti 59.1 Zr 37 Cu 2.3 Fe 1.6 alloy exhibits catastrophic failure without plasticity upon tension, which is associated with the brittle nature of the amorphous phase under tension as well as the severe stress concentration between the crystalline and amorphous phases. These results correlate the microstructures and mechanical properties of the Ti-based alloys with martensitic amorphization. • The contents of Cu and Fe determine the microstructure of CF x alloys. • Successfully prepared CF1 alloy containing amorphous martensite. • Amorphous martensite has strengthening effect in compression tests. • CF1 alloys have no tensile plasticity. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09258388
Volume :
958
Database :
Academic Search Index
Journal :
Journal of Alloys & Compounds
Publication Type :
Academic Journal
Accession number :
163931907
Full Text :
https://doi.org/10.1016/j.jallcom.2023.170511