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Phase-Field Simulation of Microsegregation and Dendritic Growth During Solidification of Hypoeutectic Al-Cu alloys

机译:亚共晶Al-Cu合金凝固过程中微偏析和枝晶生长的相场模拟

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Prediction of microstructure evolution and microsegregation is one of the most important problems in materials science. The dendritic growth and microsegregation provide a challenging simulation goal for computational models of solidification, in addition to being an important technological feature of many casting processes. The phase-field model offers the prospect of being able to perform realistic simulation experiments on dendrite growth in metallic systems. In this paper, the microsegregation and dendritic growth of hypoeutectic Al-Cu alloys under constant cooling rate was simulated using a phase-field model. The main new feature of the present model is based on the fact that the effect of the growth rate is incorporated via an effective partition coefficient that has been experimentally determined for a range of growth rates. It is shown that both models (Phase-field model and Scheil) have significant deviations from the experimental data when the equilibrium partition coefficient is considered in the calculations. Since the predicted results using the models yielded discrepancies from the experimental data, an experimental equation is adopted for calculating the effective partition coefficient from experimental data. The experimental equation is then adopted in the calculations of phase-field model and Scheil's equation, showing a good agreement with the experimental data.
机译:微观结构演变和微观偏析的预测是材料科学中最重要的问题之一。除了许多铸造工艺的重要技术特征外,枝晶的生长和微偏析为凝固的计算模型提供了具有挑战性的模拟目标。相场模型提供了能够对金属系统中枝晶生长进行现实仿真实验的前景。本文利用相场模型模拟了在恒定冷却速率下亚共晶Al-Cu合金的微观偏析和枝晶生长。本模型的主要新特征基于以下事实:增长率的影响是通过有效分配系数纳入的,有效分配系数已通过实验确定了一系列增长率。结果表明,在计算中考虑平衡分配系数时,两个模型(相场模型和Scheil)都与实验数据存在显着偏差。由于使用模型的预测结果与实验数据存在差异,因此采用实验方程从实验数据计算有效分配系数。然后在相场模型和谢尔方程的计算中采用了实验方程,与实验数据吻合良好。

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