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Numerical simulations of thermo-mechanical stresses during the casting of multi-crystalline silicon ingots

机译:多晶硅锭铸造过程中热机械应力的数值模拟

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摘要

Silicon is an important semiconductor substrate for manufacturing solar cells. The mechanical and electrical properties of multi-crystalline silicon (mc-Si) are primarily influenced by the quality of the feedstock material and the crystallization process. In this work, numerical calculations, applying finite element analysis (FEA) and finite volume methods (FVM) are presented, in order to predict thermo-mechanical stresses during the solidification of industrial size mc-Si ingots. A two-dimensional global model of an industrial multi-crystallization furnace was created for thermal stationary and time-dependent calculations using the software tool CrysMAS. Subsequent thermo-mechanical analyses of the silica crucible and the ingot were performed with the FEA code ANSYS, allowing additional calculations to define mechanical boundary conditions as well as material models. Our results show that thermal analyses are in good agreement with experimental measurements. Furthermore we show that our approach is suitable to describe the generation of thermo-mechanical stress within the silicon ingot.
机译:硅是用于制造太阳能电池的重要半导体衬底。多晶硅(mc-Si)的机械和电气性能主要受原料材料的质量和结晶过程的影响。在这项工作中,提出了应用有限元分析(FEA)和有限体积方法(FVM)进行的数值计算,以便预测工业尺寸mc-Si铸锭凝固过程中的热机械应力。使用软件工具CrysMAS创建了一个工业多结晶炉的二维全局模型,用于热固定和时间相关的计算。随后使用FEA代码ANSYS对二氧化硅坩埚和铸锭进行了热机械分析,从而允许进行额外的计算以定义机械边界条件以及材料模型。我们的结果表明,热分析与实验测量结果非常吻合。此外,我们表明,我们的方法适用于描述硅锭内部热机械应力的产生。

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