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A phase-field-crystal alloy model for late-stage solidification studies involving the interaction of solid liquid and gas phases

机译:用于固相液相和气相相互作用的后期凝固研究的相场-晶体合金模型

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摘要

We present a multiphase binary alloy phase-field-crystal model. By introducing density difference between solid and liquid into a previous alloy model, this new fusion leads to a practical tool that can be used to investigate formation of defects in late-stage alloy solidification. It is shown that this model can qualitatively capture the liquid pressure drop due to solidification shrinkage in confined geometry. With an inherited gas phase from a previous multiphase model, cavitation of liquid from shrinkage-induced pressure is also included in this framework. As a unique model that has both solute concentration and pressure-induced liquid cavitation, it also captures a modified Scheil–Gulliver-type segregation behaviour due to cavitation. Simulation of inter-dendritic channel solidification using this model demonstrates a strong cooling rate dependence of the resulting microstructure.This article is part of the theme issue ‘From atomistic interfaces to dendritic patterns’.
机译:我们提出了一种多相二元合金相场晶体模型。通过将固,液之间的密度差引入到先前的合金模型中,这种新的融合技术可以开发出一种实用的工具,可用于研究后期合金凝固过程中缺陷的形成。结果表明,该模型可以定性地捕获由于密闭几何结构中的凝固收缩引起的液体压降。对于以前的多相模型继承的气相,该收缩框架还包括因收缩引起的压力而产生的空化现象。作为具有溶质浓度和压力引起的液体空化的独特模型,它还捕获了由于空化引起的改良的Scheil-Gulliver型偏析行为。使用该模型对树突间通道凝固进行模拟,证明了所得微观结构对冷却速率的依赖性强。本文是主题“从原子界面到树突图案”的一部分。

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