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首页> 外文期刊>International journal of multiscale computational engineering >Microstructure Evolution Modeling during and after Deformation in 304 Austenitic Stainless Steel through Cellular Automaton Approach
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Microstructure Evolution Modeling during and after Deformation in 304 Austenitic Stainless Steel through Cellular Automaton Approach

机译:304奥氏体不锈钢变形过程中和变形后的组织演化的元胞自动机方法

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摘要

A 2D cellular automaton approach was used to simulate microstructure evolution during and after hot deformation. Initial properties of the microstructure and dislocation density were used as input data to the cellular automaton model. The flow curve and final grain size were the output data for the dynamic recrystallization simulation, and softening kinetics curves were the output data of static and metadynamic recrystallization simulations. The model proposed in this work considered the effect of thermomechanical parameters (e.g., temperature and strain rate) on the nucleation and growth kinetics during dynamic recrystallization. The dynamic recrystallized microstructures at different strains, temperatures, and strain rates were used as input data for static and metadynamic recrystallization simulations. It was shown that the cellular automaton approach can model the final microstructure and flow curve successfully in dynamic recrystallization conditions. The postdeformation simulation results showed that the time for 50% recrystallization decreases with increasing strain for a given initial grain size and that dynamic recrystallization slows the postdeformation recrystallization kinetics compared to a model without dynamic recrystallization.
机译:二维元胞自动机方法用于模拟热变形过程中和变形后的微观结构演变。微观结构的初始性质和位错密度用作细胞自动机模型的输入数据。流动曲线和最终晶粒尺寸是动态再结晶模拟的输出数据,软化动力学曲线是静态和亚动态再结晶模拟的输出数据。这项工作中提出的模型考虑了热力学参数(例如温度和应变速率)对动态再结晶过程中成核和生长动力学的影响。在不同的应变,温度和应变速率下的动态再结晶显微组织被用作静态和超动态再结晶模拟的输入数据。结果表明,元胞自动机方法可以在动态重结晶条件下成功地模拟最终的微观结构和流动曲线。变形后的模拟结果表明,与没有动态再结晶的模型相比,在给定的初始晶粒尺寸下,50%的再结晶时间随着应变的增加而减少,并且动态再结晶会减慢变形后的再结晶动力学。

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