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Multi Objective Genetic Algorithm to Optimize the Local Heat Treatment of a Hardenable Aluminum Alloy

机译:多目标遗传算法优化铝合金局部热处理

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The continuous research for lightweight components for transport applications to reduce the harmful emissions drives the attention to the light alloys as in the case of Aluminium (Al) alloys, capable to combine low density with high values of the strength-to-weight ratio. Such advantages are partially counterbalanced by the poor formability at room temperature. A viable solution is to adopt a localized heat treatment by laser of the blank before the forming process to obtain a tailored distribution of material properties so that the blank can be formed at room temperature by means of conventional press machines. Such an approach has been extensively investigated for age hardenable alloys, but in the present work the attention is focused on the 5000 series; in particular, the optimization of the deep drawing process of the alloy AA5754 H32 is proposed through a numerical/experimental approach. A preliminary investigation was necessary to correctly tune the laser parameters (focus length, spot dimension) to effectively obtain the annealed state. Optimal process parameters were then obtained coupling a 2D FE model with an optimization platform managed by a multi-objective genetic algorithm. The optimal solution (i.e. able to maximize the LDR) in terms of blankholder force and extent of the annealed region was thus evaluated and validated through experimental trials. A good matching between experimental and numerical results was found. The optimal solution allowed to obtain an LDR of the locally heat treated blank larger than the one of the material either in the wrought condition (H32) either in the annealed condition (H111).
机译:用于减少有害排放的运输应用的轻质部件的连续研究推动了铝(Al)合金的情况下的轻质合金,能够将低密度与强度重量比的高值相结合。这种优点在室温下的可易成形性差的情况下部分地抵抗。可行的解决方案是通过在成形过程之前通过坯料的激光采用局部热处理,以获得材料性质的定制分布,使得坯料可以通过传统的压力机在室温下形成。这种方法已经广泛调查了年龄清除合金,但在目前的工作中,注意力集中在5000系列上;特别地,通过数值/实验方法提出了合金AA5754 H32的深拉伸过程的优化。需要进行初步调查以正确调整激光参数(聚焦长度,点尺寸)以有效地获得退火状态。然后通过多目标遗传算法管理的优化平台耦合最佳过程参数。因此,通过实验试验评估并验证了在空白均力和退火区域的压力和范围内的最佳解决方案(即能够最大化LDR)。发现了实验和数值结果之间的良好匹配。允许最佳溶液在退火条件(H111)中,在锻造条件(H32)中的局部热处理的壳体的LDR大于锻造条件(H32)。

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