Crystal plasticity study on stress and strain partitioning in a measured 3D dual phase steel microstructure

被引:65
作者
Diehl, M. [1 ]
An, D. [1 ]
Shanthraj, P. [1 ]
Zaefferer, S. [1 ]
Roters, F. [1 ]
Raabe, D. [1 ]
机构
[1] Max Planck Inst Eisenforsch GmbH, D-40237 Dusseldorf, Germany
关键词
crystal plasticity; dual phase steel; microstructure; DAMASK; spectral Method; 3D EBSD; FAST FOURIER-TRANSFORMS; POLYCRYSTALLINE MATERIALS; FINITE STRAINS; COMPOSITES; DEFORMATION; MARTENSITE; CONTRAST; BEHAVIOR; SCHEME; DAMAGE;
D O I
10.1134/S1029959917030079
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Dual phase steels are advanced high strength alloys typically used for structural parts and reinforcements in car bodies. Their good combination of strength and ductility and their lean composition render them an economically competitive option for realizing multiple lightweight design options in automotive engineering. The mechanical response of dual phase steels is the result of the strain and stress partitioning among the ferritic and martensitic phases and the individual crystallographic grains and subgrains of these phases. Therefore, understanding how these microstructural features influence the global and local mechanical properties is of utmost importance for the design of improved dual phase steel grades. While multiple corresponding simulation studies have been dedicated to the investigation of dual phase steel micromechanics, numerical tools and experiment techniques for characterizing and simulating real 3D microstructures of such complex materials have been emerged only recently. Here we present a crystal plasticity simulation study based on a 3D dual phase microstructure which is obtained by EBdD tomography, also referred to as 3D EBdD (EBdD-electron backscatter diffraction). In the present case we utilized a 3D EBdD serial sectioning approach based on mechanical polishing. Moreover, sections of the 3D microstructure are used as 2D models to study the effect of this simplification on the stress and strain distribution. The simulations are conducted using a phenomenological crystal plasticity model and a spectral method approach implemented in the Dusseldorf Advanced Material Simulation Kit (DAMAdK).
引用
收藏
页码:311 / 323
页数:13
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