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Mechanical damage of half-cell cutting technologies in solar cells and module laminates

机译:半电池切割技术在太阳能电池和模块层压板上的机械损伤

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Half-cell modules are gaining an increasing market share due to their potential of increasing the module power without requiring any changes in the cell technology. However, it has turned out that different cell separation technologies can yield a similar electrical performance of the half-cells, yet leading to an entirely different mechanical behavior of the cells. Hence, the mechanical strength on solar cell and module laminate level was evaluated for thermal laser separation (TLS) and laser scribing with cleaving (LSC) cutting technologies on multicrystalline silicon Al-BSF solar cells. It could be systematically shown, that mechanical defects which are found on cell level can also be seen on module level. More precisely, the strength for the LSC batch was decreased by 35 % on cell level and 23 % on module level. The TLS process did not change significantly the strength on cell or module laminate level. Additionally, the origin of fracture was found at the edge for the laser batch and on the back side pads for the full cells and TLS cut cells. The electrical evaluation has shown minor electrical power losses of the half-cells leading to an efficiency reduction of less than 1 %_(rel).
机译:由于它们增加了模块电源而不需要细胞技术的任何变化,因此半电池模块正在增加市场份额。然而,事实证明,不同的细胞分离技术可以产生类似的半电池的电性能,但是导致细胞的完全不同的机械行为。因此,在太阳能电池和模块层压板水平时,机械强度被评估为热激光分离(TLS)和激光切割用(LSC)划线切割上多晶硅的Al-BSF太阳能电池的技术。它可以系统地示出,即在模块水平上也可以看到在细胞水平上发现的机械缺陷。更确切地说,LSC批量的强度在细胞水平上降低了35%,模块水平上的23%。 TLS过程没有显着改变细胞或模块层压水平的强度。另外,在激光批次的边缘处以及用于完整细胞和TLS切割电池的后侧焊盘处的裂缝起源。电气评估显示了半电池的小电力损耗,导致效率降低小于1%_(rel)。

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