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Utilization of Industrial Solar Cells' Scrap as the Base Material to Form Coatings

机译:利用工业太阳能电池的废料作为形成涂层的基材

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The aim of this research is to find possible ways to recycle and re-use industrial solar cell scrap. The work is concentrated on cells which are broken, damaged or rejected during the manufacturing process, which accounts from 2 to 3 percent of whole production on average. Different chemical methods have been suggested for the recovery of pure valuable elements from damaged or worn cells, while the technology presented in this paper utilizes industrial solar cell scrap to produce secondary value products. Crushed industrial waste of different fraction sizes was analyzed using scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDS), and X-ray diffraction (XRD) methods. Tungsten inert gas welding (TIG) has been chosen as the coating formation process. Proper parameters: current 55 A, voltage 19 V, gas flow rate 5 l/min, torch tilt angle 80-85 degrees were selected experimentally, as parameters of common welding are not suitable for the deposition. The chemical composition and transition of chemical elements towards the substrate showed sufficient adhesion and smooth distribution of elements. Alongside with aforementioned methods, mechanical tests were accomplished, showing that damaged solar cells industrial scrap could be used as a source of alloying elements to compose the coating. The hardness of produced coatings as deposited reached 39 HRC (microhardness 2 GPa) on average. Formed coatings could serve for various applications, however further in-depth research is necessary. As suggested, the wear test method is too aggressive for this type of surface. Nevertheless, coatings based on industrial solar cell scrap showed a mass loss two times lower on average than normalized structural steel S355 substrate in rough abrasive conditions.[GRAPHICS].
机译:本研究的目的是找到回收和重新使用工业太阳能电池废料的可能方法。该作品集中在制造过程中破碎,损坏或拒绝的细胞上,平均占整个产量的2%至3%。已经提出了不同的化学方法,用于从损坏或磨损的细胞中恢复纯粹有价值的元素,而本文提出的技术利用工业太阳能电池废料产生二级价值。使用扫描电子显微镜(SEM),能量分散X射线光谱(EDS)和X射线衍射(XRD)方法进行分析不同分数尺寸的粉碎工业废物。选择了钨惰性气体焊接(TIG)作为涂层形成过程。适当的参数:电流55a,电压19 V,气体流速5 L / min,实验选择炬倾斜角度80-85度,因为公共焊接的参数不适合沉积。化学成分和化学元素朝向基质的转变显示出足够的粘附性和平稳的元素分布。除了上述方法外,完成机械测试,显示出损坏的太阳能电池工业废料可以用作构成涂层的合金元件的源。沉积的生产涂层的硬度平均达到39小时(微硬度2GPa)。形成的涂层可用于各种应用,但是进一步深入研究是必要的。如图所示,磨损试验方法对于这种类型的表面过于侵蚀性。然而,基于工业太阳能电池废料的涂层显示出在粗糙磨料条件下平均归一化结构钢S355衬底的2倍的质量损失。[图形]。

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