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A Physically Based Constitutive Model and Continuous Dynamic Recrystallization Behavior Analysis of 2219 Aluminum Alloy during Hot Deformation Process

机译:2219铝合金热变形过程的本构模型及连续动态再结晶行为分析

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摘要

The isothermal compression tests of the 2219 Al alloy were conducted at the temperature and the strain rate ranges of 623–773 K and 0.01–10 s−1, respectively, and the deformed microstructures were observed. The flow curves of the 2219 Al alloy obtained show that flow stress decreases with the increase in temperature and/or the decrease in strain rate. The physically based constitutive model is applied to describe the flow behavior during hot deformation. In this model, Young’s modulus and lattice diffusion coefficient are temperature-dependent, and the creep exponent is regarded as a variable. The predicted values calculated by the constitutive model are in good agreement with the experimental results. In addition, it is confirmed that the main softening mechanism of the 2219 Al alloy during hot deformation is dynamic recovery and incomplete continuous dynamic recrystallization (CDRX) by the analysis of electron backscattered diffraction (EBSD) micrographs. Moreover, CDRX can readily occur under the condition of high temperatures, low strain rates, and large strains. Meanwhile, the recrystallization grain size will also be larger.
机译:在温度和应变率范围分别为623–773 K和0.01–10 s −1 的温度下进行了2219铝合金的等温压缩试验,并观察到变形的微观组织。获得的2219铝合金的流动曲线表明,流动应力随着温度的升高和/或应变速率的降低而降低。基于物理的本构模型用于描述热变形过程中的流动行为。在该模型中,杨氏模量和晶格扩散系数与温度有关,蠕变指数被视为变量。本构模型计算得到的预测值与实验结果吻合良好。此外,通过电子背散射衍射(EBSD)显微照片分析,可以确认2219铝合金在热变形过程中的主要软化机理是动态恢复和不完全连续动态再结晶(CDRX)。此外,在高温,低应变速率和大应变的条件下,CDRX容易发生。同时,再结晶晶粒尺寸也将更大。

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