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Micromechanical Modeling of Two-Phase Steels

机译:两阶段钢的微机械建模

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A two-dimensional micromechanical model based on the finite element method is presented to model two-phase ferritic/pearlitic steels, by aid of generalised plane strain elements. A periodic representative cell containing 100 ferrite grains, and the desired fraction pearlite is used. By applying periodic boundary conditions, loading by an average stress or strain state is possible. Uniaxial tensile tests were performed on specimens containing the ferrite and pearlite microstructures, and on two-phase materials containing 25% and 58% pearlite respectively. The stress-strain data of the pearlite material is used to fit a laminar dependent Taylor relation to represent the pearlite workhardening. Thereafter, laminar spacings in the two-phase materials are measured, and the total stress-strain response of the materials is modelled. Comparisons between generated data and experiments show good agreement up to a strain of 2%.
机译:基于有限元方法的二维微机械模型以广义平面应变元件的辅助给出两相铁素体/珠光体钢。使用含有100铁素质晶粒的周期性代表性细胞和所需的颗粒珠光体。通过施加周期性边界条件,可以通过平均应力或应变状态加载。对含有铁素体和珠光体微观结构的标本和含有25%和58%珠光体的两相材料进行单轴拉伸试验。珠光体材料的应力 - 应变数据用于适合层状依赖性泰勒关系,以代表珠光体挥发性。此后,测量两相材料中的层间距,并模拟材料的总应力 - 应变响应。生成数据与实验之间的比较表现出良好的一致性,应变为2%。

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