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One-dimensional model of the equiaxed grain formation in multi-crystalline silicon

机译:多晶硅等轴晶形成的一维模型

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During solidification of low purity silicon for photovoltaic (PV) cells, solute rejection at the growth interface leads to an increase of the carbon concentration in the liquid phase and then to the precipitation of silicon carbide (SiC). When the precipitate radius becomes higher than the silicon critical nucleus radius, SiC can act as a refining agent for the Si and Si equiaxed grains appear in the liquid. The grain structure of the ingot changes from columnar to small grains, also known as grits. We developed a one-dimensional analytical model of this series of phenomena, including C segregation, SiC nucleation and growth, Si nucleation on the SiC precipitates and subsequent growth of the Si equiaxed grains. The equations are implemented under Matlab software in order to predict the columnar to equiaxed transition (CET) during the directional solidification of PV Si. We carried out calculations of the position and thickness of the equiaxed areas and of the number and size of Si grits as a function of the main process parameters: thermal gradient and growth velocity. Recommendations in order to adapt the growth process parameters to the initial carbon content are given. It is expected that coupling this model to global 3D numerical simulation codes could help improving the yield of ingot solidification.
机译:在用于光伏(PV)电池的低纯度硅固化过程中,溶质在生长界面处的排斥会导致液相中碳浓度的增加,然后导致碳化硅(SiC)沉淀。当析出物半径大于硅临界核半径时,SiC可以用作细化剂,使硅和硅等轴晶粒出现在液体中。铸锭的晶粒结构从圆柱状变为小晶粒,也称为沙粒。我们针对这一系列现象建立了一个一维分析模型,包括C偏析,SiC成核和生长,SiC析出物上的Si成核以及随后等轴晶晶粒的生长。该方程在Matlab软件下实现,以便预测PV Si定向凝固过程中的柱状转变为等轴转变(CET)。我们根据主要工艺参数(热梯度和生长速度)对等轴区的位置和厚度以及硅砂粒的数量和大小进行了计算。为了使生长过程参数适应初始碳含量,提出了一些建议。预计将此模型与全局3D数值模拟代码耦合将有助于提高铸锭凝固的产量。

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