太阳能电池互连用铜带的力学性能和疲劳

S. Wiese, R. Meier, F. Kraemer
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引用次数: 31

摘要

太阳能电池串的焊接是光伏组件生产的关键步骤。温度引起的应力会导致细胞破裂。在焊接过程中,电池和电线被加热并膨胀。在随后的冷却阶段,它们收缩。Cu和Si之间的差异收缩与热梯度相结合,在组装中引起机械应力。此外,太阳能组件的寿命可能会受到铜带疲劳的限制。由于前玻璃和硅电池的热膨胀系数存在显著差异,因此温度波动能够在光伏组件中诱发热机械应力。本文将介绍铜材料的力学试验结果。为了解释材料的疲劳行为,将给出与相关显微组织的关联。基于所研究的力学行为,总结了在太阳能组件生产过程中正确处理铜带的实际意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanical behaviour and fatigue of copper ribbons used as solar cell interconnectors
The soldering of solar cell strings is a critical step in the production of photovoltaic modules. Temperature induced stresses can cause cracking in the cells. During the soldering operation, the cell and the wires are heat up and expand. During the subsequent cooling phase they contract. The differential contraction between the Cu and the Si combined with thermal gradients, causes mechanical stress in the assembly. Moreover the lifetime of solar modules can be limited by the fatigue of the copper-ribbons. Since the front glass and the silicon cells have a significant difference in their coefficients of thermal expansion, temperature fluctuations are able to induce thermo-mechanical stresses in the photovoltaic module. The paper will present the results of the mechanical tests on copper materials. In order to give an explanation for the fatigue behaviour of the material, a correlation to the relevant microstructures will be given. Based on the investigated mechanical behaviour practical implications for proper handling of copper ribbons during solar module production processes will be concluded.
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