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Phase-Field Simulation for Non-isothermal Solidification of Al-Cu Binary Alloy

机译:Al-Cu二元合金非等温凝固的相场模拟

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Based on the principle of dilute solution approximation, a phase field model for dendritic growth during the non-isothermal solidification process was proposed by coupling the phase field, concentration field and temperature field, and was adopted to investigate the dendritic growth of Al-Cu binary alloy during the non-isothermal solidification process. Also, the simulations of free dendritic growth in an undercooled melt of Al-4.5%Cu binary alloy with different perturbation intensity and anisotropy were carried out by the present phase field model. The results show that during the non-isothermal solidification process of Al-4.5%Cu binary alloy, the dendrite grow into undercooled melt with the solute rejection and latent heat release at the front of solid/liquid interface, and the solute enriches at the dendrite root and high temperature appears at the dendritic growth front. With the increase of perturbation intensity, the dendritic growth becomes more developed and more branches appear. Moreover, the anisotropy coefficient also has a great effect on the dendritic growth, and the growth speed of dendrite increases with the increase of anisotropy coefficient.
机译:基于稀释溶液近似的原理,通过偶联相田,浓度场和温度场,提出了非等温凝固过程中树突生长的相现场模型,并采用研究Al-Cu二进制的树突生长合金在非等温凝固过程中。此外,通过本阶段模型进行了具有不同扰动强度和各向异性的Al-4.5%Cu二元合金的过冷熔体中的自由树突生长的模拟。结果表明,在Al-4.5%Cu二元合金的非等温凝固过程中,树突在固体/液体界面前面的溶质排斥和潜热释放,并在树枝状内富集根茎和高温出现在树枝状生长前。随着扰动强度的增加,树突生长变得更加发达,出现更多的分支。此外,各向异性系数也对树突生长产生了很大的影响,并且枝晶的生长速度随着各向异性系数的增加而增加。

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