会议论文详细信息
10th International Conference and Workshop on Numerical Simulation of 3D Sheet Metal Forming Processes
Crystal Plasticity Constitutive Model for Multiphase Advanced High Strength Steels to Account for Phase Transformation and Yield Point Elongation
Park, Taejoon^1 ; Pourboghrat, Farhang^1
Ohio State University, Department of Integrated Systems Engineering, Ohio State University, 210 Baker Systems, 1971 Neil Avenue, Columbus
OH
43210, United States^1
关键词: Advanced high strength steel;    Dislocation density evolution;    Inhomogeneous plastic deformation;    Lattice invariant shears;    Martensitic phase transformations;    Orientation relationship;    Transformation kinetics;    Yield point elongations;   
Others  :  https://iopscience.iop.org/article/10.1088/1742-6596/734/3/032127/pdf
DOI  :  10.1088/1742-6596/734/3/032127
来源: IOP
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【 摘 要 】

A constitutive law was developed based on a rate-independent crystal plasticity to account for the mechanical behavior of multiphase advanced high strength steels. Martensitic phase transformation induced by the plastic deformation of the retained austenite was represented by considering the lattice invariant shear deformation and the orientation relationship between parent austenite and transformed martensite. The stress dependent transformation kinetics were represented by adopting the stress state dependent volume fraction evolution law. The plastic deformation of the austenite was determined to have the minimum- energy associated with the work during the phase transformation. In addition to the martensitic phase transformation, yield point elongation and subsequent hardening along with inhomogeneous plastic deformation were also represented by developing a hardening stagnation model induced by the delayed dislocation density evolution.

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