Atomistic simulations of interaction of edge dislocation with twist grain boundaries in Al-effect of temperature and boundary misorientation

被引:26
作者
Chandra, S. [1 ]
Samal, M. K. [2 ]
Chavan, V. M. [1 ]
Patel, R. J. [1 ]
机构
[1] Bhabha Atom Res Ctr, Refueling Technol Div, Mumbai 400085, Maharashtra, India
[2] Bhabha Atom Res Ctr, Reactor Safety Div, Mumbai 400085, Maharashtra, India
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 2015年 / 646卷
关键词
Dislocation; Grain boundary; Molecular dynamics; MOLECULAR-DYNAMICS SIMULATIONS; LOW-ANGLE; MECHANICAL-PROPERTIES; SLIDING BEHAVIOR; PLASTICITY; ALUMINUM; DEFORMATION; NUCLEATION; SCALE; DENSITY;
D O I
10.1016/j.msea.2015.08.049
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Grain boundaries play an important role in characterizing the mechanical behavior of polycrystalline materials, since they can act as sites for absorption or nucleation of dislocations, which are the main carriers of plastic deformation. In view of this, we performed Molecular Dynamics (MD) simulations to study the interaction of edge dislocations with twist grain boundaries. FCC Al was selected as the model material. Simulations were carried out under different temperature conditions (up to 0.9T(m), where T-m is the melting point of Al) on (110) twist grain boundaries of different misorientation angles. In this way, we were able to quantify the resistance of the grain boundary to dislocation absorption at different temperatures ranging from 10 K to 900 K. Our results reveal that the dislocation absorption resistance varies considerably with the grain boundary misorientation angle, and that the resistance first increases to a maximum before it starts decreasing again as the melting point is achieved. The ramifications of this study towards crystal plasticity finite element modeling are discussed. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:25 / 32
页数:8
相关论文
共 70 条
[11]   HIGH-ANGLE GRAIN-BOUNDARY PREMELTING TRANSITION - A MOLECULAR-DYNAMICS STUDY [J].
CICCOTTI, G ;
GUILLOPE, M ;
PONTIKIS, V .
PHYSICAL REVIEW B, 1983, 27 (09) :5576-5585
[12]  
Cottrell A.H., 1954, AM J PHYS, V22, P242, DOI DOI 10.1119/1.1933704
[13]  
DAS ESP, 1974, J APPL PHYS, V45, P574, DOI 10.1063/1.1663286
[14]   Modeling of dislocation-grain boundary interactions in FCC metals [J].
de Koning, M ;
Kurtz, RJ ;
Bulatov, VV ;
Henager, CH ;
Hoagland, RG ;
Cai, W ;
Nomura, M .
JOURNAL OF NUCLEAR MATERIALS, 2003, 323 (2-3) :281-289
[15]   Evaluation of finite element based analysis of 3D multicrystalline aggregates plasticity - Application to crystal plasticity model identification and the study of stress and strain fields near grain boundaries [J].
Diard, O ;
Leclereq, S ;
Rousselier, G ;
Cailletaud, G .
INTERNATIONAL JOURNAL OF PLASTICITY, 2005, 21 (04) :691-722
[16]   Discrete dislocation dynamics simulations to interpret plasticity size and surface effects in freestanding FCC thin films [J].
Espinosa, H. D. ;
Panico, M. ;
Berbenni, S. ;
Schwarz, K. W. .
INTERNATIONAL JOURNAL OF PLASTICITY, 2006, 22 (11) :2091-2117
[17]   Scale dependent crystal plasticity framework with dislocation density and grain boundary effects [J].
Evers, LP ;
Brekelmans, WAM ;
Geers, MGD .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2004, 41 (18-19) :5209-5230
[18]   Temperature dependence of grain boundary free energy and elastic constants [J].
Foiles, Stephen M. .
SCRIPTA MATERIALIA, 2010, 62 (05) :231-234
[19]  
Gottstein G., 1999, CRC MAT SCI TECHNOL
[20]   Bridging time-scales: Grain boundary sliding constitutive law from atomistics [J].
Gouissem, A. ;
Sarangi, R. ;
Deng, Q. ;
Sharma, P. .
COMPUTATIONAL MATERIALS SCIENCE, 2015, 104 :200-204