Multiple slip dislocation patterning in a dislocation-based crystal plasticity finite element method

被引:53
|
作者
Grilli, N. [1 ,2 ]
Janssens, K. G. F. [1 ]
Nellessen, J. [3 ]
Sandloebes, S. [3 ,4 ]
Raabe, D. [3 ]
机构
[1] Paul Scherrer Inst, Nucl Energy & Safety Dept, Lab Nucl Mat, CH-5232 Villigen, Switzerland
[2] Ecole Polytech Fed Lausanne, IMX, NXMM Lab, CH-1015 Lausanne, Switzerland
[3] Max Planck Inst Eisenforsch GmbH, Dept Microstruct Phys & Alloy Design, D-40237 Dusseldorf, Germany
[4] Rhein Westfal TH Aachen, RWTH, Inst Phys Met & Met Phys, D-52056 Aachen, Germany
基金
瑞士国家科学基金会;
关键词
Dislocations; Dislocation-based crystal plasticity; Fatigue; Finite element method; LOW-CYCLE FATIGUE; SINGLE-CRYSTALS; STAINLESS-STEEL; AISI; 316L; FCC CRYSTALS; CROSS-SLIP; DEFORMATION; COPPER; SIMULATION; EVOLUTION;
D O I
10.1016/j.ijplas.2017.09.015
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Dislocation structures forming during cyclic loading of fcc metals are fatigue damage precursors. Their specific structures are caused by the motion and interactions of dislocations. Depending on the load conditions, the grain orientation, the stacking fault energy, a variety of different dislocation structures appear in the material such as labyrinths, cells, veins and persistent slip bands. We present a continuum dislocation-based model for cyclic fatigue and incorporate it into a crystal plasticity finite element solver. A method for the simulation of dislocation junction formation is introduced, which reproduces the behaviour of discrete objects, such as dislocations, in a continuum framework. The formation of dislocation walls after 50 and 100 deformation cycles at 0.95% and 0.65% strain amplitude starting from an initial random dislocation distribution is predicted for < 001 > and < 1 (1) over bar0 > oriented crystals. Simulations and cyclic tension-compression experiments of polycrystalline 316L stainless steel are performed to compare our model with another model based on edge and screw dislocation densities. The simulated dislocation structures and experimental results, obtained with the electron channeling contrast imaging technique, are compared using a 2D orientation distribution function of the dislocation structures. The dominant orientation of dislocation walls is predicted by the new model; it turns out to be perpendicular to the intersection line between the two slip planes involved in their formation and at an angle of around 45 degrees from the loading axis. This agrees well with the experimental observations and represents a step forward for understanding the formation mechanism of these dislocation structures. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:104 / 121
页数:18
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