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Simulation of Recrystallization Behavior and Austenite Grain Size Evolution during Hot Deformation of Low Carbon Steel Using the Flow Stress

机译:用流量应力仿真低碳钢热变形期间的再结晶行为和奥氏体晶粒尺寸演化

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摘要

Microstructure evolution can cause changes in dislocation density during hot plastic formation of metals and greatly influence the shape of flow curves. Recrystallization kinetics and average grain size were simulated by the coupled flow stress model describing dislocation development and microstructure evolution. The model for microstructure evolution considered different kinds ofrecrystallization in the same process rooted from nucleation and grain growth. Flow stress was calculated from the average dislocation density determined by the dislocation density model, which took into account hardening and recovery during the hot deformation process. Model parameters were defined by inverse analysis of flow curves obtained from hot compression tests and were completed through solving a nonlinear least-squares problem with constraints using optimization methods. Finally, the results obtained by the proposed model were compared with experimental results.
机译:金属热塑料形成期间,微观结构的进化会导致位错密度的变化,大大影响流动曲线的形状。通过描述位错发育和微观结构演化的耦合流应力模型模拟重结晶动力学和平均晶粒尺寸。微观结构演化模型被认为具有核细胞和晶粒生长的相同过程中的不同种类次化。从通过位错密度模型确定的平均位错密度计算流量应力,该模型在热变形过程中考虑了硬化和恢复。通过使用优化方法的约束来解决从热压缩测试获得的流动曲线的逆分析来定义模型参数。通过使用优化方法,通过求解非线性最小二乘问题,通过求解非线性最小二乘问题。最后,将所提出的模型获得的结果与实验结果进行了比较。

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