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Modeling of macrosegregation and microporosity formation during transient directional solidification of aluminum alloys

机译:铝合金瞬态定向凝固过程中宏观偏析和微孔形成的建模

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摘要

In this article macrosegregation and porosity formation are investigated by a numerical modeling technique and by upward vertical unidirectional solidification experiments. The local composition predicted by the macrosegregation model along the casting is used as an input parameter for simulation of the corresponding microporosity. The effects exerted by gravity upon the solute redistribution and microporosity formation are also encompassed by the model. In particular, a vertically aligned casting experiment of a binary Al-6.2 wt.%Cu alloy is considered. An X-ray fluorescence spectrometer was used to determine the segregation profiles along the casting. The experimental segregation profile and porosity evolution along the casting are compared with theoretical predictions furnished by the numerical model, by considering a transient metal/mold heat transfer coefficient profile experimentally determined. An excellent agreement between the simulated and experimental inverse copper profile has been observed. The simulation of porosity formation for an anisotropic channel has conformed better with the experimental scatter, with the experimental volumetric fraction of pores profile presenting an ascending trend from the chill to the top of the ingot.
机译:在本文中,通过数值建模技术和向上垂直单向凝固实验研究了宏观偏析和孔隙形成。宏观偏析模型沿铸件预测的局部成分用作模拟相应微孔率的输入参数。该模型还包括重力对溶质重新分布和微孔形成的影响。特别地,考虑了二元Al-6.2重量%Cu合金的垂直取向铸造实验。使用X射线荧光光谱仪确定沿铸件的偏析轮廓。通过考虑实验确定的瞬态金属/模具传热系数曲线,将沿着铸件的实验偏析轮廓和孔隙率演变与数值模型提供的理论预测进行了比较。已观察到模拟铜和实验铜的逆曲线之间的极好一致性。各向异性通道的孔隙形成模拟与实验散点图更加吻合,实验的孔剖面体积分数呈现出从冷态到晶锭顶部的上升趋势。

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