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Inverse Regression Analysis Method to Determine Mathematical Model of Dislocation Density Using Flow Stress Curves

机译:利用流应力曲线确定位错密度数学模型的逆回归分析方法

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The flow stress curves of Q345B microalloyed steel during hot compression deformation were obtained at 900-1100°C and strain rates of 0.0110s-1 on Gleeble-3500 thermo-mechanical simulator. Based on the experimental results, a inverse regression analysis method was proposed to determine the mathematical model of dislocation density and its correlation coefficients using the flow stress curves, so as to laid the foundations for calculating carbonitrides precipitates, deformation resistance and the end-rolled strength of microalloyed steels during hot rolling precisely. The effects of the deformation parameters (strain rate and deformation temperature) and microstructural evolution (workhardening, dynamic recovery and dynamic recrystallization) on dislocation density were taken into account. Finally, the validity of the proposed model is discussed considering the plausibility of the parameters assessed for evaluating the dislocation density. It was proved that the model was reasonable and it could provide a guide to production.
机译:在Gleeble-3500热力机械模拟器上,在900-1100°C和0.0110s-1的应变速率下,获得了Q345B微合金钢在热压缩变形过程中的流动应力曲线。根据实验结果,提出了一种逆向回归分析方法,利用流变应力曲线确定位错密度及其相关系数的数学模型,为碳氮化物的析出,抗变形性和终轧强度的计算奠定了基础。精确地进行热轧过程中的微合金钢加工。考虑了形变参数(应变率和形变温度)和微结构演变(加工硬化,动态恢复和动态再结晶)对位错密度的影响。最后,考虑所估计的用于评估位错密度的参数的合理性,讨论了所提出模型的有效性。实践证明,该模型是合理的,可以为生产提供指导。

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