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Numerical Modeling of Deflected Columnar Dendritic Grains Solidified in a Flowing Melt and Its Experimental Verification

机译:流动熔体中凝固的柱状枝晶晶粒的数值模拟及其实验验证

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A two-dimensional, coupled, cellular automaton-continuum model was developed to model the evolution of solidification grain structures and the deflection behavior of the columnar dendritic grains solidified in a flowing melt. Al-Cu alloys were solidifed on an inclined Cu chill in order to investigate the deflection behavior of columnar grains. The growth velocity of a dendrite was determined by the KGT (Kurz-Giovanola-Trivedi) model based on the calculated temperature and solute profiles around a dendrite tip during solidification. The deflection behavior of the growing grains in a flowing melt was studied by the macroscopic observation of the solidified shell on the inclined Cu chill plate, and the interpretation of this phenomenon was made with the aid of numerical calculation, including Cu chill plate, and the interpretation of this phenomenon was made with the aid of numerical calculation, including Cu solute redistribution and velocity vector profile around dendrite tips during solidification, with various solidification parameters. Effects of flow velocity and solute content on the deflection angle of the columnar grains were investigated through experiments, and the results were compared with the numerical simulations.
机译:建立了二维耦合的细胞自动机连续谱模型,以模拟凝固晶粒结构的演变以及在流动熔体中凝固的柱状枝晶晶粒的变形行为。 Al-Cu合金在倾斜的Cu激冷器上凝固,以研究柱状晶粒的变形行为。基于KGT(Kurz-Giovanola-Trivedi)模型,基于计算的凝固过程中枝晶尖端周围的温度和溶质分布,确定了枝晶的生长速度。通过宏观观察倾斜的铜冷却板上凝固壳,研究了流动熔体中生长晶粒的变形行为,并借助包括铜冷却板在内的数值计算方法对这种现象进行了解释。借助数值计算,包括各种凝固参数,包括凝固过程中枝晶尖端周围的Cu溶质再分布和速度矢量分布,对这种现象进行了解释。通过实验研究了流速和溶质含量对柱状晶偏角的影响,并与数值模拟结果进行了比较。

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