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Monotectic composite growth with fluid flow

机译:具有流体流动的单晶复合材料生长

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摘要

It is a well-known fluid-mechanical phenomenon that thermocapillary forces induce surface convection on a fluid-fluid interface. This so-called Marangoni convection depends on the variation of the surface energy along the interface. In our present work we focus our attention on the evolution of a fibrous monotectic microstructure with liquid L_2 fibers. We will show, that the Marangoni convection has a strong influence on the transport of solute in front of the solidification front, despite the flow induced by density differences. The resulting flow field affects the constitutional undercooling and therefore the mean undercooling of a monotectic solidification front. In a previous paper we discussed qualitatively the influence of fluid flow on the microstructure evolution of composite monotetic growth (C. Stoecker, L. Ratke, J. Crystal Growth 203 (1999) 582). We introduced an analytical model that takes the density differences of the phases and the surface convection on the L_1-L_2 surface into consideration. With this extended Jackson and Hunt theory for composite monotectic growth we derived a characteristic equation for the inter-rod distance depending on solidification velocity and temperature gradient. In this paper we develop a more accurate model. We solve numerically the diffusion equation coupled with the Navier-Stokes equation in the L_1 phase to find the minimal undercooling for a given velocity and temperature gradient. We derive a Jackson and Hunt diagram and show that the fluid flow leads to a strong dependence of the inter-rod distance on the temperature gradient opposite to eutectic solidification.
机译:众所周知的流体力学现象是,热毛细作用力会在流体-流体界面上引起表面对流。所谓的Marangoni对流取决于沿界面的表面能的变化。在我们目前的工作中,我们将注意力集中在液态L_2纤维的纤维单晶微观结构的演变上。我们将显示,尽管密度差异引起了流动,但Marangoni对流对凝固前沿前面的溶质传输有很大影响。所产生的流场会影响组织过冷,进而影响单晶凝固前沿的平均过冷。在先前的论文中,我们定性地讨论了流体流动对复合单峰生长微观结构演变的影响(C. Stoecker,L. Ratke,J. Crystal Growth 203(1999)582)。我们引入了一个分析模型,该模型考虑了相的密度差和L_1-L_2表面上的表面对流。利用扩展的杰克逊和亨特理论来进行复合单晶生长,我们得出了取决于凝固速度和温度梯度的杆间距离的特征方程。在本文中,我们开发了一个更准确的模型。我们在数值上求解L_1相中的扩散方程和Navier-Stokes方程,以找到给定速度和温度梯度下的最小过冷度。我们导出了杰克逊和亨特图,并表明流体流动导致杆间距离对与共晶凝固相反的温度梯度的强烈依赖性。

著录项

  • 来源
    《Journal of Crystal Growth》 |2000年第2期|p.324-333|共10页
  • 作者

    C. Stoecker; L. Ratke;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 晶体学;
  • 关键词

  • 入库时间 2022-08-17 13:29:19

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