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Constitutive Modeling of the Tensile Behavior of Al-TWIP Steel

机译:Al-TWIP钢拉伸行为的本构模型

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High Mn steels demonstrate an exceptional combination of high strength and large ductility as a result of their high strain-hardening rate during deformation. The microstructure evolution and strain-hardening behavior of Fe18Mn0.6C1.5Al TWIP steel in uniaxial tension were examined. The purpose of this study was to determine the contribution of all the relevant deformation mechanisms—slip, twinning, and dynamic strain aging. Constitutive modeling was carried out based on the Kubin–Estrin model, in which the densities of mobile and forest dislocations are coupled to account for the interaction between the two dislocation populations during straining. These coupled dislocation densities were used to simulate the contribution of dynamic strain aging to the flow stress. The model was modified to include the effect of twinning. To ascertain the validity of the model, the microstructural evolution was characterized in detail by means of transmission electron microscopy and electron back-scatter diffraction.
机译:高锰钢由于在变形过程中具有较高的应变硬化率,因此具有高强度和大延展性的优异组合。研究了Fe18Mn0.6C1.5Al TWIP钢在单轴拉伸下的组织演变和应变硬化行为。这项研究的目的是确定所有相关变形机制(滑动,孪生和动态应变时效)的贡献。本构模型是基于Kubin-Estrin模型进行的,其中移动位错和森林位错的密度相结合,以说明应变过程中两个位错种群之间的相互作用。这些耦合的位错密度用于模拟动态应变时效对流动应力的影响。修改了模型以包括孪生效应。为了确定该模型的有效性,通过透射电子显微镜和电子反向散射衍射详细描述了微观结构的演变。

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