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A review on the porous medium approaches to model the flow of interdendritic liquid during the solidification of alloys in casting processes: theory and experiments

机译:多孔介质方法对铸造过程中合金凝固过程中的植物液体流动的综述:理论与实验

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The porous medium approach is one of the most popular methods to model the flow of liquid alloys through the solid interdendritic channels in the mushy zone, which is crucial to predict casting defects. In particular, characterizing the permeability of the mushy zone is of vital importance to reliably predict shrinkage porosity and blowholes. Nevertheless, this is not as simple task as permeability continuously evolves through the different stages of the solidification process. For these reasons, a great effort has been made in the past to obtain relationships relating the microstructural parameters to the permeability of the mushy zone. Also, some researchers have taken advantage of the advances in pore network modeling to predict permeability, obtaining promising results. Although a number of numerical experiments have been performed, their reliability has traditionally been hampered by the technical difficulties in reproducing real process conditions. The recent development of imaging techniques with improved spatial and temporal resolution, such as synchrotron 4D (3D + time) X-ray microtomography, has marked a turning point in the experimental validation of the models and is an efficient means to explore the solidification mechanisms. This context of prolific theoretical modeling and major technical achievements provides an excellent opportunity for the materials processing research community to apply the recent progress in fluid flow modeling through complex porous media to the field of casting processes. The aim of this article is to review the state of the art in modeling and experimental evaluation of the permeability of semi-solid zone of casting alloys during solidification so as to smooth the way to future studies. The main stumbling blocks in the field are also presented.
机译:多孔介质方法是将液体合金流过糊状区中的固体蛋白质通道模拟液体合金流动的方法之一,这对预测铸造缺陷至关重要。特别地,表征糊状区的渗透性至关重要,可靠地预测收缩孔隙率和口孔。然而,这并不像渗透率不断发展的那样简单,通过凝固过程的不同阶段不断发展。由于这些原因,过去已经努力获得将微观结构参数与糊状区渗透相关的关系。此外,一些研究人员已经利用了孔隙网络建模的进步以预测渗透性,获得有希望的结果。尽管已经进行了许多数值实验,但它们的可靠性传统上通过再现真实过程条件的技术困难而受到阻碍。最近具有改进的空间和时间分辨率的成像技术的发展,例如同步调节4D(3D +时间)X射线微观图,在模型的实验验证中标记了转折点,并且是探索凝固机制的有效手段。这种多产性理论建模和主要技术成果的背景为材料处理研究界提供了一个很好的机会,通过复杂多孔介质将流体流模型的最新进展应用于铸造过程的领域。本文的目的是审查凝固过程中铸造合金半固体区渗透性的建模和实验评估中的最新技术,以平滑未来研究的方式。该领域中的主要绊倒块也是如此。

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