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An integrated FEM and ANN methodology for metal-formed product design

机译:金属成型产品设计的集成FEM和ANN方法

摘要

In the traditional metal-formed product development paradigm, the design of metal-formed product and tooling is usually based on heuristic know-how and experiences, which are generally obtained through long years of apprenticeship and skilled craftsmanship. The uncertainties in product and tooling design often lead to late design changes. The emergence of finite element method (FEM) provides a solution to verify the designs before they are physically implemented. Since the design of product and tooling is affected by many factors and there are many design variables to be considered, the combination of those variables comes out with various design alternatives. It is thus not pragmatic to simulate all the designs to find out the best solution as the coupled simulation of non-linear plastic flow of billet material and tooling deformation is very time-consuming. This research is aimed to develop an integrated methodology based on FEM simulation and artificial neural network (ANN) to approximate the functions of design parameters and evaluate the performance of designs in such a way that the optimal design can be identified. To realize this objective, an integrated FEM and ANN methodology is developed. In this methodology, the FEM simulation is first used to create training cases for the ANN(s), and the well-trained ANN(s) is used to predict the performance of the design. In addition, the methodology framework and implementation procedure are presented. To validate the developed technique, a case study is employed. The results show that the developed methodology performs well in estimation and evaluation of the design.
机译:在传统的金属成型产品开发范例中,金属成型产品和工具的设计通常基于启发式的专门知识和经验,而这些经验和技巧通常是通过长期的学徒和熟练的工艺获得的。产品和工装设计的不确定性通常会导致后期设计变更。有限元方法(FEM)的出现提供了一种在实际实施设计之前对其进行验证的解决方案。由于产品和工具的设计受许多因素影响,并且要考虑许多设计变量,因此这些变量的组合带来了多种设计选择。因此,对所有设计进行仿真以找到最佳解决方案并不可行,因为坯料材料的非线性塑性流动与工具变形的耦合仿真非常耗时。这项研究旨在开发一种基于FEM仿真和人工神经网络(ANN)的集成方法,以近似设计参数的功能并评估设计性能,从而可以确定最佳设计。为了实现这一目标,开发了一种集成的有限元和人工神经网络方法。在这种方法中,首先使用FEM仿真来为ANN创建训练案例,并使用训练有素的ANN来预测设计的性能。此外,还介绍了方法框架和实施程序。为了验证开发的技术,采用了案例研究。结果表明,所开发的方法在设计评估和评估中表现良好。

著录项

  • 作者

    Chan WL; Fu MW; Lu J;

  • 作者单位
  • 年度 2008
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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