Modelling of the Solidifying Microstructure of Inconel 718: Quasi-Binary Approximation

N. Kropotin, Y. Fang, Chukhlanov V. Yu., M. Seyring, K. Freiberg, S. Lippmann, T. Pinomaa, A. Laukkanen, N. Provatas, P. Galenko
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Abstract

The prediction of the equilibrium and metastable morphologies during the solidification of Ni-based superalloys on the mesoscopic scale can be performed using phase-field modeling. In the present paper, we apply the phase-field model to simulate the evolution of solidification microstructures depending on undercooling in a quasi-binary approximation. The results of modeling are compared with experimental data obtained on samples of the alloy Inconel 718 (IN718) processed using the electromagnetic leviatation (EML) technique. The final microstructure, concentration profiles of niobium, and the interface-velocity–undercooling relationship predicted by the phase field modeling are in good agreement with the experimental findings. The simulated microstructures and concentration fields can be used as inputs for the simulation of the precipitation of secondary phases.
Inconel 718凝固组织模拟:准二元近似
利用相场模型可以在介观尺度上预测镍基高温合金凝固过程中的平衡态和亚稳态态。在本文中,我们采用相场模型模拟了准二元近似下凝固组织随过冷度的演变。将模拟结果与电磁悬浮(EML)技术处理的Inconel 718合金(IN718)样品的实验数据进行了比较。相场模型预测的最终微观结构、铌浓度分布以及界面速度-过冷关系与实验结果吻合较好。模拟的显微组织和浓度场可作为二次相析出模拟的输入。
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