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Hybrid forming process of AA 6108 T4 thin sheets: Modelling by neural network solutions

机译:AA 6108 T4薄板的混合成形工艺:通过神经网络解决方案建模

摘要

The highly non-linear deformation processes occurring in most dynamic sheet metal forming operations cause large amounts of elastic strain energy to be stored in the formed material and massive related springback phenomena. Therefore, this paper investigates how effective a laser source is in reducing the extent of springback in mechanical contact forming operations. The hybrid forming process investigated was composed of using a high-power diode laser to induce local heating of mechanically bent AA 6108 T4 thin sheets in order to minimize the extent of the springback. In particular, experiments were carried out to assess the influence of the leading process parameters such as laser source power, scan speed, and starting elastic deformation of the mechanically bent sheets. It was found that the trends in the experimental response of residual deflection were always consistent with the operating parameters. Artificial intelligence techniques were then used to model the hybrid forming process. The extent of the springback in the hybrid forming process of AA 6108 T4 thin sheets was predicted by using different neural network models and training algorithms. Lastly, the reliability of the best neural network solutions was checked by comparing these solutions with experimental results and by developing an ad hoc first approximation technical model. © IMechE 2009.
机译:在大多数动态钣金成形操作中发生的高度非线性变形过程会导致大量弹性应变能存储在成形材料中,并产生大量相关的回弹现象。因此,本文研究了激光源在减少机械触点成形操作中回弹程度方面的有效性。研究的混合成型工艺包括使用大功率二极管激光器对机械弯曲的AA 6108 T4薄板进行局部加热,以最大程度地减小回弹的程度。特别是,进行了实验以评估主要工艺参数(例如激光源功率,扫描速度和机械弯曲板的开始弹性变形)的影响。发现残余挠度的实验响应趋势始终与操作参数一致。然后使用人工智能技术对混合成型过程进行建模。通过使用不同的神经网络模型和训练算法,可以预测AA 6108 T4薄片的混合成形过程中的回弹程度。最后,通过将这些解决方案与实验结果进行比较,并通过开发一个特设的第一近似技术模型,来检查最佳神经网络解决方案的可靠性。 ©IMechE 2009。

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