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Multipass forging of Inconel 718 in the delta-Supersolvus domain: assessing and modeling microstructure evolution

机译:Inconel 718在三角洲-超级固溶域中的多道次锻造:评估和模拟组织演变

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This work is focused on the evolution of the microstructure of Inconel 718 during multi-pass forging processes. During the forming process, the material is subjected to several physical phenomena such as work-hardening, recovery, recrystallization and grain growth. In this work, transformation kinetics are modeled in the δ-Supersolvus domain (TTsolvus) where the alloy is single-phase, all the alloying elements being dissolved into the FCC matrix. Torsion tests were used to simulate the forging process and recrystallization kinetics was modeled using a discontinuous dynamic recrystallization (DDRX) two-site mean field model. The microstructure evolution under hot forging conditions is predicted in both dynamic and post-dynamic regimes based on the initial distribution of grain size and the evolution of dislocation density distribution during each step of the process. The model predicts recrystallization kinetics, recrystallized grain size distribution and stress–strain curve for different thermo-mechanical conditions and makes the connection between dynamic and post-dynamic regimes.
机译:这项工作的重点是在多道次锻造过程中Inconel 718微观组织的演变。在成型过程中,材料会经受多种物理现象,例如加工硬化,恢复,再结晶和晶粒长大。在这项工作中,在合金为单相的δ-超级溶解域(T> Tsolvus)中模拟了转变动力学,所有合金元素均溶解在FCC基体中。使用扭转试验来模拟锻造过程,并使用不连续动态重结晶(DDRX)两点平均场模型对重结晶动力学进行建模。基于晶粒尺寸的初始分布和过程中每个步骤中位错密度分布的演变,可以在动态和后动力学状态下预测热锻条件下的组织演变。该模型预测了不同热机械条件下的再结晶动力学,再结晶晶粒尺寸分布和应力-应变曲线,并建立了动态​​和后动态状态之间的联系。

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