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A Kinetic Model for Dissolution of Second phases in Die-cast Mg Alloy AM50

机译:压铸Mg合金AM50中第二阶段溶解动力学模型

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摘要

Dissolution of secondary phases during thermal treatment in cast magnesium alloys influences their engineering properties. In this study, a kinetic model based on a Kissinger-type method has been developed for describing dissolution of secondary phases in the high pressure die cast magnesium alloy AM50 during a thermally activated heating process. Also, differential scanning calorimetry (DSC) was effectively used for investigating the dissolution kinetics of secondary phases in the AM50 alloy. By fitting a kinetic model to the DSC results, the activation energy of the dissolution of the secondary phases can be determined. In parallel, the microstructure of the alloy was analyzed by scanning electron microscopy (SEM) with energy dispersive X-ray spectroscopy (EDS). It was found that the distribution of secondary phases and the concentration of alloying elements both at the grain boundaries and in the grains play an important role in the solid-state transformation kinetics of die cast magnesium alloy AM50.
机译:在铸造镁合金中热处理期间二次相的溶解影响其工程性质。在该研究中,已经开发了一种基于吻合器型方法的动力学模型,用于描述热活化的加热过程中高压模矿镁合金AM50中的二次相溶解。此外,差分扫描量热法(DSC)有效地用于研究AM50合金中二次相的溶出动力学。通过将动力学模型拟合到DSC结果,可以确定二次相溶解的激活能量。并行地,通过用能量分散X射线光谱(EDS)扫描电子显微镜(SEM)来分析合金的微观结构。结果发现,在晶粒边界和晶粒中的二次相和合金元素浓度的分布在压铸镁合金AM50的固态转化动力学中起重要作用。

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