首页> 外文会议>Theory, Modeling and Numerical Simulation of Multi-Physics Materials Behavior >Simulation of the Columnar-to-Equiaxed Transition in Alloy Solidification- the Effect of Nucleation Undercooling, Density of Nuclei in Bulk Liquid and Alloy Solidification Range on the Transition
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Simulation of the Columnar-to-Equiaxed Transition in Alloy Solidification- the Effect of Nucleation Undercooling, Density of Nuclei in Bulk Liquid and Alloy Solidification Range on the Transition

机译:合金凝固过程中柱状到等轴转变的模拟-形变过冷,大体积液体中核密度和合金凝固范围对转变的影响

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A coupled cellular automaton-finite difference (CA-FD) model is used to simulate the detailed dendritic structure evolution of the columnar-to-equiaxed transition (CET) for Al-Cu alloys during solidification. The effects of material properties (nucleation undercooling, density of nuclei in bulk liquid and alloy solidification range) on the CET are investigated. Simulated results reveal that: (1) equiaxed grains form at an earlier stage with a smaller critical nucleation undercooling; (2) CET is promoted if the density of nuclei in bulk liquid is increased; (3) extending the alloy solidification range promotes the CET. Finally, CET maps corresponding to different alloy concentrations are constructed, illustrating the relationship between processing conditions and the resulting grain structures for alloys with different solidification ranges.
机译:耦合元胞自动机有限差分(CA-FD)模型用于模拟凝固过程中Al-Cu合金的柱状到等温转变(CET)的详细树状结构演变。研究了材料性能(成核过冷,大块液体中核的密度和合金凝固范围)对CET的影响。模拟结果表明:(1)等轴晶晶粒形成较早,临界过冷度较小。 (2)如果增加大块液体中的核密度,则促进CET; (3)扩大合金的凝固范围促进了CET。最后,构建了对应于不同合金浓度的CET图,说明了不同凝固范围的合金的加工条件与所得晶粒结构之间的关系。

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