位错
分子动力学
材料科学
位错蠕变
皮尔斯应力
晶体缺陷
结晶学
凝聚态物理
化学物理
物理
化学
计算化学
复合材料
作者
Arttu Lehtinen,Fredric Granberg,Lasse Laurson,K. Nordlund,Mikko J. Alava
出处
期刊:Physical review
[American Physical Society]
日期:2016-01-21
卷期号:93 (1)
被引量:92
标识
DOI:10.1103/physreve.93.013309
摘要
The stress-driven motion of dislocations in crystalline solids, and thus the ensuing plastic deformation process, is greatly influenced by the presence or absence of various point-like defects such as precipitates or solute atoms. These defects act as obstacles for dislocation motion and hence affect the mechanical properties of the material. Here we combine molecular dynamics studies with three-dimensional discrete dislocation dynamics simulations in order to model the interaction between different kinds of precipitates and a $\frac{1}{2}\langle 1 1 1\rangle$ $\{1 1 0\}$ edge dislocation in BCC iron. We have implemented immobile spherical precipitates into the ParaDis discrete dislocation dynamics code, with the dislocations interacting with the precipitates via a Gaussian potential, generating a normal force acting on the dislocation segments. The parameters used in the discrete dislocation dynamics simulations for the precipitate potential, the dislocation mobility, shear modulus and dislocation core energy are obtained from molecular dynamics simulations. We compare the critical stresses needed to unpin the dislocation from the precipitate in molecular dynamics and discrete dislocation dynamics simulations in order to fit the two methods together, and discuss the variety of the relevant pinning/depinning mechanisms.
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