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Effect of a Long-Range Dislocation Pileup on the Atomic-Scale Hydrogen Diffusion near a Grain Boundary in Plastically Deformed bcc Iron
被引:3
|作者:
Peng, Yipeng
[1
,2
]
Ji, Rigelesaiyin
[3
]
Phan, Thanh
[4
]
Chen, Xiang
[5
]
Zhang, Ning
[6
]
Xu, Shuozhi
[7
]
Bastawros, Ashraf
[4
]
Xiong, Liming
[1
,4
]
机构:
[1] North Carolina State Univ, Dept Mech & Aerosp Engn, Raleigh, NC 27695 USA
[2] Los Alamos Natl Lab, Mat Sci & Technol Div, Los Alamos, NM 87545 USA
[3] Schlumberger, 3MT Modeling & Simulat Grp, Sugar Land, TX 77478 USA
[4] Iowa State Univ, Dept Aerosp Engn, Ames, IA 50011 USA
[5] Univ North Carolina Charlotte, Dept Mech Engn & Engn Sci, Charlotte, NC 28223 USA
[6] Baylor Univ, Dept Mech Engn, Waco, TX 76706 USA
[7] Univ Oklahoma, Sch Aerosp & Mech Engn, Norman, OK 73019 USA
来源:
基金:
美国国家科学基金会;
关键词:
dislocation plasticity;
hydrogen embrittlement;
atomistic and multiscale simulations;
local stresses;
grain boundary;
HIGH-PURITY IRON;
ENHANCED LOCALIZED PLASTICITY;
MECHANICAL-PROPERTIES;
ELASTIC FIELD;
SIMULATION;
STRESS;
EMBRITTLEMENT;
MODEL;
TRANSPORT;
CORROSION;
D O I:
10.3390/cryst13081270
中图分类号:
O7 [晶体学];
学科分类号:
0702 ;
070205 ;
0703 ;
080501 ;
摘要:
In this paper, we present concurrent atomistic-continuum (CAC) simulations of the hydrogen (H) diffusion along a grain boundary (GB), nearby which a large population of dislocations are piled up, in a plastically deformed bi-crystalline bcc iron sample. With the microscale dislocation slip and the atomic structure evolution at the GB being simultaneously retained, our main findings are: (i) the accumulation of tens of dislocations near the H-charged GB can induce a local internal stress as high as 3 GPa; (ii) the more dislocations piled up at the GB, the slower the H diffusion ahead of the slip-GB intersection; and (iii) H atoms diffuse fast behind the pileup tip, get trapped within the GB, and diffuse slowly ahead of the pileup tip. The CAC simulation-predicted local H diffusivity, Dpileup-tip, and local stresses, s, are correlated with each other. We then consolidate such correlations into a mechanics model by considering the dislocation pileup as an Eshelby inclusion. These findings will provide researchers with opportunities to: (a) characterize the interplay between plasticity, H diffusion, and crack initiation underlying H-induced cracking (HIC); (b) develop mechanism-based constitutive rules to be used in diffusion-plasticity coupling models for understanding the interplay between mechanical and mass transport in materials at the continuum level; and (c) connect the atomistic deformation physics of polycrystalline materials with their performance in aqueous environments, which is currently difficult to achieve in experiments.
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