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Modelling the crystal growth in highly undercooled alloy melts by non-isothermal phase-field method

机译:通过非等温相场法模拟高度过冷的合金熔体中的晶体生长

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A non-isothermal phase-field model is used to simulate the rapid solidification of highly undercooled alloy melts.The influence of undercooling on the solidification process is studied. It is indicated that with the increase of undercooling, the dendrite morphology changes from poorly developed dendrite, via the well-developed dendrite containing secondary and ternary arms, to the compact diamond-shaped grain. With increasing undercooling, the tip radius changes in the following rule: decrease → increase → decrease while the growth velocity increases constantly, which is consistent with the results predicted by the Boettinger-Coriell-Trivedi model. The thermal, solutal and kinetic undercooling contributions under different initial undercooling are also determined. It is shown that when the undercooling is increased beyond a certain value, the thermal undercooling contribution exceeds the solutal contribution and the dendrite growth transits from solutal diffusion controlled to thermal diffusion controlled one.
机译:使用非等温相场模型来模拟高度过冷的合金熔体的快速凝固。研究了过冷对凝固过程的影响。结果表明,随着过冷度的增加,枝晶形态从欠发达的枝晶,通过发达的含有第二和三元臂的枝晶转变为致密的菱形晶粒。随着过冷度的增加,尖端半径按以下规则变化:减小→增大→减小,而生长速度不断增加,这与Boettinger-Coriell-Trivedi模型所预测的结果一致。还确定了不同初始过冷下的热,溶液和动力学过冷贡献。结果表明,当过冷度增加到一定值以上时,热过冷度的贡献超过溶质贡献,枝晶生长从溶质扩散控制转变为热扩散控制。

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