Comparison of dislocation density based approaches for prediction of defect structure evolution in aluminium and copper processed by ECAP

被引:51
作者
Bratov, V. [1 ,2 ]
Borodin, E. N. [2 ,3 ]
机构
[1] St Petersburg State Univ, St Petersburg 199034, Russia
[2] RAS, IPME, St Petersburg 199034, Russia
[3] Chelyabinsk State Univ, Chelyabinsk, Russia
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 2015年 / 631卷
关键词
ECAP; Modelling; Dislocation density; DRX; FEM; DYNAMIC RECRYSTALLIZATION; MICROSTRUCTURE; DEFORMATION; STRAIN; MODEL;
D O I
10.1016/j.msea.2015.02.019
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Three known dislocation density based models are compared to each other, and to available experimental results. All three models were embedded into ANSYS finite element (FE) software and firstly utilised to predict aluminium and copper transformations (dislocation density evolution and the resulting grain size) in a result of a single pass of equal channel angular pressing (ECAP). It is demonstrated that for the studied problem dislocation density evolution under severe plastic deformation (SPD) can be precisely predicted utilizing simple classical model. One of the models was utilized to predict defect structure evolution for the series of ECAP passes. Simulations have revealed that within the framework of the proposed model the increase of the dislocation density on ECAP pass is proportional to yield strength increment on the previous pass for both studied materials. This fact gives grounds to a proposal of a semi-analytical approach, predicting dislocation density evolution in a result of consequent ECAP passes on the basis of a numerical simulation of the two first passes. The utilized Idnetic model for dislocation density evolution separates between densities of mobile and immobile dislocations. Employing the idea of separation of dislocations into mobile and immobile, a new approach for dynamic recrystallization coupling dislocation density and the size of grain formed in metal is proposed. The proposed approach for dynamic recrystallization appeared to be applicable for the whole range of grain sizes. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:10 / 17
页数:8
相关论文
共 27 条
[11]  
Kittel C., 2005, INTRO SOLID STATE PH
[12]   Dislocation based high-rate plasticity model and its application to plate-impact and ultra short electron irradiation simulations [J].
Krasnikov, V. S. ;
Mayer, A. E. ;
Yalovets, A. P. .
INTERNATIONAL JOURNAL OF PLASTICITY, 2011, 27 (08) :1294-1308
[13]   Gradient plasticity constitutive model reflecting the ultrafine micro-structure scale: the case of severely deformed copper [J].
Lapovok, R ;
Dalla Torre, FH ;
Sandlin, J ;
Davies, CHJ ;
Pereloma, EV ;
Thomson, PF ;
Estrin, Y .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2005, 53 (04) :729-747
[14]   Grain refinement of pure copper by ECAP [J].
Lugo, N. ;
Cabrera, J. M. ;
Llorca, N. ;
Luis, C. J. ;
Luri, R. ;
Leon, J. ;
Puertas, I. .
NANOMATERIALS BY SEVERE PLASTIC DEFORMATION IV, PTS 1 AND 2, 2008, 584-586 :393-398
[15]   Dislocation self-organization processes and crystal plasticity [J].
Malygin, GA .
USPEKHI FIZICHESKIKH NAUK, 1999, 169 (09) :979-1010
[16]   Modeling of plasticity and fracture of metals at shock loading [J].
Mayer, A. E. ;
Khishchenko, K. V. ;
Levashov, P. R. ;
Mayer, P. N. .
JOURNAL OF APPLIED PHYSICS, 2013, 113 (19)
[17]  
McLean D, 1957, Grain Boundaries in Metals
[18]   Observation and modeling of dynamic recrystallization in high-strain, high-strain rate deformation of metals [J].
Meyers, MA ;
Nesterenko, VF ;
LaSalvia, JC ;
Xu, YB ;
Xue, Q .
JOURNAL DE PHYSIQUE IV, 2000, 10 (P9) :51-56
[19]  
Meyers MA, 2009, MECHANICAL BEHAVIOR OF MATERIALS, 2ND EDITION, P161
[20]   Role of topological constraints on the statistical properties of grain boundary networks [J].
Minich, RW ;
Schuh, CA ;
Kumar, M .
PHYSICAL REVIEW B, 2002, 66 (05) :1-4