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Thermo-mechanical Analysis of Directional Crystallisation of Multi-crystalline Silicon Ingots

机译:多晶硅锭定向晶体的热力学分析

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Multi-crystalline silicon ingot casting using directional crystallisation is the most cost-effective technique for the production of Si for the photovoltaic industry. Non-uniform cooling conditions and a non-planarity of the solidification front result, however, in the build-up of stresses and viscoplastic deformation. Known defects, such as dislocations and residual stresses, can then occur and reduce the quality of the produced material. Numerical simulation, combined with experimental investigation, is therefore a key tool for understanding the crystallisation process, and optimizing it. The purpose of the present work is to present an experimental furnace for directional crystallisation of silicon, and its analysis by means of numerical simulation. The complete casting procedure, i.e., including both the crystallisation phase and the subsequent ingot cooling, is simulated. The thermal field has been computed by a CFD tool, taking into account important phenomena such as radiation and convection in the melt. The transient thermal field is used as input for a thermo-elasto-viscoplastic model for the analysis of stress build-up and viscoplastic deformation during the process. Numerical analysis is employed to identify process phases where further optimisation is needed in order to reduce generated defects.
机译:使用定向结晶的多晶硅锭铸造是用于光伏工业生产SI的最具成本效益的技术。然而,在应力和粘塑变形的积累中,凝固前结果的不均匀冷却条件和非平面性。然后可以发生已知的缺陷,例如脱臼和残余应力,并降低所生产的材料的质量。因此,与实验研究相结合的数值模拟是一种理解结晶过程和优化它的关键工具。本作本作作品的目的是提出一种实验炉,用于硅的定向结晶,并通过数值模拟分析。模拟完整的铸件步骤,即包括结晶相和随后的铸锭冷却。热场通过CFD工具计算,考虑到熔体中的辐射和对流等重要现象。瞬态热场用作热弹性粘塑料模型的输入,用于分析过程中应力堆积和粘液变形。使用数值分析来识别需要进一步优化以减少产生的缺陷的过程阶段。

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