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A multivariate approach to utilizing mid-sequence process control data

机译:利用多序列方法控制数据的多元方法

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While the measurement of cell efficiency is still considered one of the primary assessments of a cell's quality, a modern photovoltaic manufacturing facility will also include a range of metrology to assess the performance at various steps during the manufacturing sequence. These measurements can be used to control individual processes and ensure reliable process interactions, but they are at their most powerful where they can be correlated to the final performance of the cell. Such a relationship is not always easy to establish, particularly when the data collected during the process cannot be parametrized entirely with a single variable. This paper shows how two multivariate approaches can be used to form a relationship between cell lifetime data collected early in a fabrication sequence, and the final cell Voc. While building a model with a high level of predictive accuracy is rarely feasible, it is possible to identify a higher proportion of under-performing product and provide insight into how material type interacts with the manufacturing sequence.
机译:虽然电池效率的测量仍然被认为是对电池质量的主要评估之一,但现代化的光伏制造设施还将包括一系列度量衡,以评估制造过程中各个步骤的性能。这些测量可用于控制单个过程并确保可靠的过程交互,但是它们可以发挥最大作用,可以将其与电池的最终性能相关联。这种关系并不总是容易建立的,特别是当在处理过程中收集的数据无法完全用单个变量进行参数设置时。本文展示了如何使用两种多元方法来形成在制造序列早期收集的电池寿命数据与最终电池Voc之间的关系。尽管建立具有高水平预测准确性的模型几乎是不可行的,但有可能找出表现不佳产品的较高比例,并提供有关材料类型如何与制造顺序相互作用的见解。

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