Anomalous plasticity of body-centered-cubic crystals with non-Schmid effect

被引:43
作者
Cho, Hansohl [1 ]
Bronkhorst, Curt A. [1 ]
Mourad, Hashem M. [1 ]
Mayeur, Jason R. [1 ]
Luscher, D. J. [1 ]
机构
[1] Los Alamos Natl Lab, Div Theoret, Los Alamos, NM 87545 USA
关键词
Crystal plasticity; Non-Schmid effect; Body-centered-cubic crystal; Tantalum; NON-GLIDE STRESSES; SCREW DISLOCATIONS; CORE STRUCTURE; CRYSTALLOGRAPHIC TEXTURE; POLYCRYSTALLINE METALS; ORIENTATION DEPENDENCE; CONSTITUTIVE MODEL; SINGLE-CRYSTALS; SLIP SYSTEMS; STRAIN-RATE;
D O I
10.1016/j.ijsolstr.2018.01.029
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Plastic deformations in body-centered-cubic (bcc) crystals have been of critical importance in diverse engineering and manufacturing contexts across length scales. Numerous experiments and atomistic simulations on bcc crystals reveal that classical crystal plasticity models with the Schmid law are not adequate to account for abnormal plastic deformations often found in these crystals. In this paper, we address a continuum mechanical treatment of anomalous plasticity in bcc crystals exhibiting non-Schmid effects, inspired from atomistic simulations recently reported. Specifically, anomalous features of plastic flows are addressed in conjunction with a crystal plasticity model involving two non-Schmid projection tensors widely accepted for representing non-glide components of an applied stress tensor. Further, modeling results on a representative bcc tantalum are presented and compared to experimental data at a range of low temperatures to provide physical insight into deformation mechanisms in these crystals with non Schmid effects. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:138 / 149
页数:12
相关论文
共 69 条
[1]   Evaluating the effects of loading parameters on single-crystal slip in tantalum using molecular mechanics [J].
Alleman, Coleman ;
Ghosh, Somnath ;
Luscher, D. J. ;
Bronkhorst, Curt A. .
PHILOSOPHICAL MAGAZINE, 2014, 94 (01) :92-116
[2]   Single-crystal elasto-viscoplasticity: application to texture evolution in polycrystalline metals at large strains [J].
Anand, L .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2004, 193 (48-51) :5359-5383
[3]   A computational procedure for rate-independent crystal plasticity [J].
Anand, L ;
Kothari, M .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 1996, 44 (04) :525-558
[4]   OVERVIEW .42. TEXTURE DEVELOPMENT AND STRAIN-HARDENING IN RATE DEPENDENT POLYCRYSTALS [J].
ASARO, RJ ;
NEEDLEMAN, A .
ACTA METALLURGICA, 1985, 33 (06) :923-953
[5]   MICROMECHANICS OF CRYSTALS AND POLYCRYSTALS [J].
ASARO, RJ .
ADVANCES IN APPLIED MECHANICS, 1983, 23 :1-115
[6]   CRYSTAL PLASTICITY [J].
ASARO, RJ .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 1983, 50 (4B) :921-934
[7]   STRAIN LOCALIZATION IN DUCTILE SINGLE-CRYSTALS [J].
ASARO, RJ ;
RICE, JR .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 1977, 25 (05) :309-338
[8]   Modeling the microstructural evolution of metallic polycrystalline materials under localization conditions [J].
Bronkhorst, C. A. ;
Hansen, B. L. ;
Cerreta, E. K. ;
Bingert, J. F. .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2007, 55 (11) :2351-2383
[9]   POLYCRYSTALLINE PLASTICITY AND THE EVOLUTION OF CRYSTALLOGRAPHIC TEXTURE IN FCC METALS [J].
BRONKHORST, CA ;
KALIDINDI, SR ;
ANAND, L .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1992, 341 (1662) :443-477
[10]  
Busso EP, 1990, CYCLIC DEFORMATION M