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Modeling Static and Dynamic Kinetics of Microstructure Evolution in Type 316 Stainless Steel

机译:316型不锈钢微观组织演化的静态和动态动力学建模

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摘要

The material genome of type 316 austenitic stainless steel is presented. The material genome is a set of constitutive equations which describes the microstructure evolution during hot forming. Single- and double-compression tests at temperatures of 950-1150°C and with strain rates of 0.01-20 s~(-1) were performed to obtain the kinetics of dynamic and static events. Inverse analysis, which couples a thermomechanical finite element analysis with experimental data, is used to obtain the flow curves. It compensates the effect of inhomogeneous distributions of deformation and temperature during the compression tests. The sine-hyperbolic law, which relates the flow stress and the Zener-Hollomon parameter, is used to validate the accuracy of the solution. Regression analysis is applied on the coefficients of the flow curves in order to obtain the parameters of the constitutive equations. Microstructure investigations are used to demonstrate the validity of the newly obtained material genome.
机译:介绍了316型奥氏体不锈钢的材料基因组。材料基因组是一组本构方程,描述了热成型过程中的微观结构演变。在950-1150°C的温度下,以0.01-20 s〜(-1)的应变速率进行了单次和二次压缩试验,获得了动态和静态事件的动力学。逆分析将热机械有限元分析与实验数据相结合,用于获得流动曲线。它可以补偿压缩测试期间变形和温度不均匀分布的影响。将流应力与齐纳-所罗门参数相关的正弦双曲定律用于验证解的准确性。对流动曲线的系数进行回归分析,以获得本构方程的参数。微结构研究被用来证明新获得的物质基因组的有效性。

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