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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >An optimization strategy based on a metamodel applied for the prediction of the initial blank shape in a deep drawing process
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An optimization strategy based on a metamodel applied for the prediction of the initial blank shape in a deep drawing process

机译:基于元模型的优化策略应用于深冲压过程中的初始毛坯形状预测

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摘要

The transformation of the sheet into a product without failure and excess of material in a deep drawing operation means that the initial blanks should be correctly designed. Therefore, the initial blank design is a critical step in deep drawing design procedure. Consequently, an easy approach for engineers in predicting the initial blank shape is necessary to reduce wastage in material and to overcome the large time consumed in the classical approaches. Thus, the aim of the present investigation is to propose an automatic procedure for the quick sheet metal forming optimization. In fact, a metamodel will be build based on artificial neural networks which will be coupled then with an optimization procedure in order to predict the initial blank shape in a rectangular cup deep drawing operation. The metamodel is built from the finite element simulations using ABAQUS commercial code. This procedure allows a significant reduce of the CPU time compared to classical optimization one. The results show that the desired shape is in good agreement with the one calculated using the optimized blank shape.
机译:在深冲压操作中将板材转变为产品而不会出现故障和材料过多的现象,这意味着应正确设计初始坯料。因此,最初的毛坯设计是深图设计过程中的关键步骤。因此,工程师需要一种简单的方法来预测初始毛坯形状,以减少材料浪费并克服传统方法所消耗的大量时间。因此,本研究的目的是提出一种用于快速钣金成形优化的自动程序。实际上,将基于人工神经网络构建元模型,然后将其与优化过程耦合在一起,以预测矩形杯深拉操作中的初始毛坯形状。该元模型是使用ABAQUS商业代码通过有限元模拟建立的。与传统的优化程序相比,此过程可显着减少CPU时间。结果表明,所需形状与使用优化的毛坯形状计算出的形状高度吻合。

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