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The inhibition mechanism of liquid metal embrittlement cracks in the Fe–Cu system by Al: atomistic simulations and calculations.

Authors :
Wang, Shuo
Cai, Xiang
Wang, Zan
Ju, Jia
Zhou, Jian
Xue, Feng
Source :
Journal of Materials Science. Aug2023, Vol. 58 Issue 31, p12673-12684. 12p. 3 Color Photographs, 4 Diagrams, 2 Charts, 1 Graph.
Publication Year :
2023

Abstract

The impact of solute Al on the penetration of Cu atoms into the Fe grain boundary (GB) in the Fe–Cu embrittlement system was investigated by performing molecular dynamics simulations. Furthermore, the first principle density functional theory calculation was also employed to determine the binding properties and the electronic structure of GBs doped with solute atoms. The inhibition mechanism of liquid metal embrittlement (LME) cracks in the Fe–Cu system by Al was analyzed at the atomic scale by conducting simulations and calculations. The results show that the diffusion rate of Al along with the GB direction was much higher than that of Cu, and the preferential penetration and segregation of Al atoms acted as a barrier layer. Moreover, the addition of Al reduced the potential energy of Cu atoms, thus stabilizing their motion. These factors significantly inhibited the diffusion of Cu atoms along with the GB direction. The binding property of Fe GB doped with a high concentration of Cu was severely deteriorated, while the Al doping improved the atomic bonding. GBs with higher binding properties are less susceptible to fracture and groove under the application of tensile stress. This paper presents a novel perspective on the inhibition mechanism of LME cracks by doping a third component to inhibit the penetration of embrittlement atoms. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00222461
Volume :
58
Issue :
31
Database :
Academic Search Index
Journal :
Journal of Materials Science
Publication Type :
Academic Journal
Accession number :
170028192
Full Text :
https://doi.org/10.1007/s10853-023-08790-z