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Mathematical Modeling for Microstructural Evolution in Multi-pass Hot Compression of Q345E Alloy Steel

机译:Q345E合金钢多道次热压缩组织演变的数学模型

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The deformation process and inter-pass time of hot working are always accompanied by complicated microstructural evolution. As a kind of low alloy steels with good malleability, Q345E steel is widely used. The specimens of Q345E steel were heated to 1123, 1223, 1323, 1423, and 1523 K and held for 0, 120, 240, 360, and 480 s, respectively, on Gleeble-3500 thermo-mechanical simulator to develop the austenite grain growth equation of Q345E steel. In addition, the 'single-pass hot compression tests,' 'double-pass hot compression tests,' and 'single-pass hot compression and thermal insulation tests' at temperature from 1123 to 1423 K with the strain rate from 0.01 to 10 s(-1) were carried out on Gleeble-3500 thermo-mechanical simulator to investigate the behavior of dynamic recrystallization (DRX), meta-dynamic recrystallization (MDRX), and static recrystallization (SRX), and to establish the mathematical equations of DRX, MDRX, and SRX, which can predict the volume fraction of recrystallization and grain size after recrystallization. The result of error analysis and a 2D finite element simulation model during hot upsetting verifies that the experimental data agree well with the predicted values calculated by these mathematical equations, which indicates that the established mathematical equations can be applied to accurately predict the microstructural evolution of Q345E steel during hot deformation.
机译:热加工的变形过程和通过时间总是伴随着复杂的组织演变。 Q345E钢是一种具有良好延展性的低合金钢,被广泛使用。将Q345E钢的试样加热到1123、1223、1323、1423和1523 K,并分别在Gleeble-3500热机械模拟器上保持0、120、240、360和480 s,以发展奥氏体晶粒长大Q345E钢的方程。此外,在1123至1423 K的温度下,应变速率为0.01至10 s的“单次热压缩测试”,“双次热压缩测试”和“单次热压缩和隔热测试”。 (-1)是在Gleeble-3500热机械模拟器上进行的,以研究动态重结晶(DRX),亚动态重结晶(MDRX)和静态重结晶(SRX)的行为,并建立DRX的数学方程, MDRX和SRX,它们可以预测重结晶的体积分数和重结晶后的晶粒尺寸。热up过程中的误差分析和二维有限元仿真模型的结果验证了实验数据与这些数学方程计算的预测值吻合良好,表明所建立的数学方程可用于准确预测Q345E的微观结构演变钢在热变形期间。

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