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Silicon ingot casting: process development by numerical simulations

机译:硅锭铸造:通过数值模拟进行工艺开发

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摘要

Multicrystalline silicon from ingot casting processes has reached a high market share in photovoltaic industry. One reason for this is the increase of the quality of multicrystalline wafers which leads to higher solar cell efficiency. This progress was supported by numerical simulations, namely for the SOLPIN ingot casting process which is used by the Deutsche Solar GmbH for the production of high-quality multicrystalline wafers. In this paper, we give some examples of numerical simulation results, showing the temperature distribution in furnaces and silicon ingots for various process conditions. The influence of lateral and vertical heat flux due to the shape of the liquid-solid phase boundary and the solidification velocity is demonstrated in numerical case studies. As an example for the potential of our process simulations we report about the reduction of the dislocation density in a multicrystalline ingot, which was predicted by simulations and verified by experimental results. (C) 2002 Elsevier Science B.V. All rights reserved. [References: 7]
机译:来自铸锭工艺的多晶硅已在光伏行业中占有很高的市场份额。其原因之一是多晶晶片质量的提高,这导致更高的太阳能电池效率。数值模拟为这一进步提供了支持,即SOLPIN铸锭工艺,德意志太阳能有限公司将其用于生产高质量的多晶晶圆。在本文中,我们给出了一些数值模拟结果的示例,显示了不同工艺条件下的熔炉和硅锭的温度分布。在数值案例研究中证明了由于液相-固相​​边界的形状和凝固速度对横向和纵向热通量的影响。作为我们过程模拟潜力的一个例子,我们报告了多晶锭中位错密度的降低,这是通过模拟预测并通过实验结果验证的。 (C)2002 Elsevier Science B.V.保留所有权利。 [参考:7]

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