论文标题

最初微观结构对热形成过程中锆洛伊-4重结晶的影响的表征和建模

Characterization and modeling of the influence of initial microstructure on recrystallization of zircaloy-4 during hot forming

论文作者

Grand, Victor, Flipon, Baptiste, Gaillac, Alexis, Bernacki, Marc

论文摘要

本文提出了一项详细的研究,以通过实验和数值工具在热形成条件下对锆洛伊-4的重结晶进行结晶。描述了这项工作所必需的热机械测试和表征活动。然后,从最简单到最复杂的一种微观结构演化机制进行了表征。量化了谷物生长动力学,并分析了第二相颗粒种群的影响。然后,提供了对动态和动态后重结晶的完整研究。确认了连续机制的发生,并评估了热机械条件对重结晶的影响。后来,提出了用于模拟晶粒生长,连续和动态后结晶的数值框架。在成功地复制了带有和没有第二相颗粒的谷物变质动力学后,该模型被用来描述从初始等化和完全重结晶的微观结构的连续动态重结晶和动态后的重结晶。实验结果和数值结果之间的一致性进行了详细评估。最后,模拟动力后的重结晶,从两个变形的微观结构开始,这些微观结构是由电子背裂片衍射技术进行的,并浸入模拟中。这允许讨论和重现初始微观结构的影响。

The present article proposes a detailed study of recrystallization of zircaloy-4 under hot forming conditions by means of experimental and numerical tools. Thermomechanical tests and characterization campaigns that have been necessary for this work are described. Then, the different microstructure evolution mechanisms are characterized, from the simplest one to the most complex. Grain growth kinetics is quantified and the influence of second phase particle population is analyzed. Then, a complete study of dynamic and post-dynamic recrystallization is provided. The occurrence of a continuous mechanism is confirmed and the influence of thermomechanical conditions upon recrystallization is assessed. Later, the numerical framework used to simulate grain growth, continuous and post-dynamic recrystallization is presented. After having successfully reproduced the grain coarsening kinetics with and without second phase particles, the model is used to describe continuous dynamic recrystallization and post-dynamic recrystallization from an initial equiaxed and fully recrystallized microstructure. The agreement between experimental and numerical results is assessed in detail. Finally, post-dynamic recrystallization is simulated, starting from two deformed microstructures characterized by electron back-scattered diffraction technique and immersed into simulations. This allows to discuss and reproduce the influence of initial microstructure.

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