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Evolutionary algorithm optimizes screen design for solar cell metallization

机译:进化算法优化太阳能电池金属化屏幕设计

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Today?s PV production chain heavily relies on screen printing as the predominant metallization process because of its robust production capabilities. However, the continuous demand to further increase throughput rates while at the same time decreasing printed structure sizes is going to create fundamental challenges in the upcoming years. In order to address this problem, robust fine-line screens at competitive production costs need to be developed. Throughout this study, we present an optimization of screen architectures by utilizing an evolutionary algorithm. Individual screen architectures are defined by genes that represent industrial manufacturing parameters. Our algorithm then solves for the optimal trade-off between printability of a screen, its mechanical stability and optimal mesh tension to ensure sufficient snap-off mechanics. Further, a computational fluid dynamics simulation is performed to find the optimal thickness of the corresponding emulsion layer in respect to the underlying optimized mesh architecture. Our results predict mesh configurations with mesh counts up to MC = 1268 1/inch and wire diameters down to d =6.7 ?m in order to enable fine-line printing below 10 ?m.
机译:如今,由于其强劲的生产能力,PV生产链依赖于丝网印刷作为主要的金属化过程。然而,在即将降低印刷结构尺寸的同时,不断提高吞吐率的不断需求将在即将到来的几年内创造基本挑战。为了解决这个问题,需要开发竞争力的生产成本的强大细线屏幕。在本研究中,我们通过利用进化算法来提供屏幕架构的优化。各个屏幕架构由代表工业制造参数的基因定义。然后,我们的算法解决了屏幕的可印刷性之间的最佳折衷,其机械稳定性和最佳网格张力,以确保足够的扑克机械机械。此外,执行计算流体动力学模拟以了解相应的乳液层关于底层优化的网格架构的最佳厚度。我们的结果预测Mesh Computation的网格配置直到MC = 1268 1 /英寸,电线直径向下至D = 6.7·M,以便在10Ωm以下实现细线打印。

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