首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Improved seeded directional solidification process for producing high-efficiency multi-crystalline silicon ingots for solar cells
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Improved seeded directional solidification process for producing high-efficiency multi-crystalline silicon ingots for solar cells

机译:改进的定向晶种凝固工艺,用于生产用于太阳能电池的高效多晶硅锭

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摘要

We proposed an improved process design for the industrial mc-Si seeded directional solidification process to produce high-quality multi-crystalline silicon ingots for high-efficiency solar cells. A transient global model of heat transfer was employed to investigate the effects of the process design parameters on the melt-crystal interface shape, thermal field, and thermal stress distribution in the solidified silicon ingot during the solidification process. Ingot casting experiments were carried out and the solar cell performance was measured. The results show that the melt-crystal interface shape in the improved process design remains convex during almost the whole solidification process, and the thermal stress level at the bottom of the solidified ingots is significantly lower than in the original process design. Based on the experimental results, the quality of grown silicon ingots and the conversion efficiency of solar cells were analyzed. The shadow region present in the silicon ingot produced with the original process design disappears and the morphology of the ingot is improved with a more homogeneous distribution of grain orientation using the improved process design. The average yield rate of the solidified silicon ingot is 8.18% higher with the improved process design. The average conversion efficiency of solar cells is higher with the improved process design (17.59%) than with the original process design (17.48%).
机译:我们为工业mc-Si晶种定向凝固工艺提出了一种改进的工艺设计,以生产用于高效太阳能电池的高质量多晶硅锭。瞬态传热全局模型用于研究工艺设计参数对凝固过程中凝固的硅锭中的熔体晶体界面形状,热场和热应力分布的影响。进行铸锭实验并测量太阳能电池性能。结果表明,改进的工艺设计中的熔体-晶体界面形状在几乎整个凝固过程中都保持凸形,并且凝固后的铸锭底部的热应力水平明显低于原始工艺设计。根据实验结果,分析了生长的硅锭的质量和太阳能电池的转换效率。使用改进的工艺设计,通过原始工艺设计生产的硅锭中存在的阴影区域消失,晶格的形态得到改善,晶粒取向的分布更加均匀。通过改进的工艺设计,固化的硅锭的平均产率提高了8.18%。改进的工艺设计(17.59%)比原始工艺设计(17.48%)的太阳能电池平均转换效率更高。

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