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An enthalpy method for modeling eutectic solidification

机译:一种共晶凝固的焓法

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摘要

This paper presents a new micro-scale model for solidification of eutectic alloys. The model is based on the enthalpy method and simulates the growth of adjacent α and β phases from a melt of eutectic composition in a two-dimensional Eulerian framework. The evolution of the two phases is obtained from the solution of volume averaged energy and species transport equations which are formulated using the nodal enthalpy and concentration potential values. The three phases are tracked using the β-phase fraction and the liquid fraction values in all the computational nodes. Solutal convection flow field in the domain is obtained from the solution of volume-averaged momentum and continuity equations. The governing equations are solved using a coupled explicit–implicit scheme. The model is qualitatively validated with Jackson–Hunt theory. Results show expected eutectic growth pattern and proper species transfer and diffusion field ahead of the interface. Capabilities of the model such as lamella width selection, division of lamella into thinner lamellae and the presence of solutal convection are successfully demonstrated. The present model can potentially be incorporated into the existing framework of enthalpy based micro-scale dendritic solidification models thus leading to an efficient generalized microstructure evolution model.
机译:本文提出了一种新的共晶合金凝固的微观模型。该模型基于焓方法,并在二维欧拉框架中模拟了共晶成分熔体中相邻α和β相的生长。从体积平均能量和物种迁移方程的解获得两相的演化,该方程是使用节点焓和浓度势值制定的。使用所有计算节点中的β相分数和液体分数值跟踪三相。根据体积平均动量和连续性方程的解获得域中的对流对流场。使用耦合的显式-隐式方案求解控制方程。该模型已通过Jackson-Hunt理论定性验证。结果表明,预期的共晶生长方式以及在界面之前的适当物种转移和扩散场。该模型的功能,如薄片宽度选择,薄片分成更薄薄片的薄片以及溶液对流的存在,都得到了成功证明。本模型可以潜在地结合到基于焓的微观树状凝固模型的现有框架中,从而导致有效的广义微观结构演化模型。

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