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Hot Deformation Characteristics and 3-D Processing Map of a High-Titanium Nb-Micro-alloyed Steel

机译:高钛铌微合金钢的热变形特性和3-D加工图

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摘要

Hot deformation behavior of a high-titanium Nb-micro-alloyed steel was investigated by conducting hot compression tests at the temperature of 900–1100 °C and the strain rate of 0.005–10 s . Using a sinh type constitutive equation, the apparent activation energy of the examined steel was 373.16 kJ/mol and the stress exponent was 6.059. The relations between Zener–Hollomon parameters versus peak stress (strain) or steady-state stress (strain) were successfully established via the Avrami equation. The dynamic recrystallization kinetics model of the examined steel was constructed and the validity was confirmed based on the experimental results. The 3-D atomic distribution maps illustrated that strain can significantly affect the values of power dissipation efficiency and the area of instability domains. The 3-D processing maps based on a dynamic material model at the strains of 0.2, 0.4, 0.6 and 0.8 were established. Based on traditional and 3-D processing maps and microstructural evaluation, the optimum parameter of for a high-titanium Nb-micro-alloyed steel was determined to be 1000–1050 °C/0.1–1 s .
机译:通过在900–1100°C的温度和0.005–10 s的应变速率下进行热压缩试验,研究了高钛Nb微合金钢的热变形行为。使用sinh型本构方程,被测钢的表观活化能为373.16 kJ / mol,应力指数为6.059。齐纳-所罗门参数与峰值应力(应变)或稳态应力(应变)之间的关系已通过Avrami方程成功建立。建立了被测钢的动态再结晶动力学模型,并根据实验结果验证了其有效性。 3-D原子分布图说明,应变会显着影响功耗效率值和不稳定性域的面积。建立了基于动态材料模型的应变为0.2、0.4、0.6和0.8的3-D处理图。根据传统的和3D加工图以及显微组织评估,确定高钛Nb微合金钢的最佳参数为1000–1050°C / 0.1–1 s。

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