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Influence of the Constitutive Flow Law in FEM Simulation of the Radial Forging Process

机译:本构流动规律对径向锻造过程有限元模拟的影响。

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Radial forging is a widely used forming process for manufacturing hollow products in transport industry. As the deformation of the workpiece, during the process, is a consequence of a large number of high-speed strokes, the Johnson-Cook constitutive law (taking into account the strain rate) seems to be well adapted for representing the material behavior even if the process is performed under cold conditions. But numerous contributions concerning radial forging analysis, in the literature, are based on a simple elastic-plastic formulation. As far as we know, this assumption has yet not been validated for the radial forging process. Because of the importance of the flow law in the effectiveness of the model, our purpose in this paper is to analyze the influence of the use of an elastic-viscoplastic formulation instead of an elastic-plastic one for modeling the cold radial forging process. In this paper we have selected two different laws for the simulations the Johnson-Cook and the Ludwik ones, and we have compared the results in terms of forging force, product's thickness, strains, stresses, and CPU time. For the presented study we use an AISI 4140 steel, and we denote a fairly good agreement between the results obtained using both laws.
机译:径向锻造是一种广泛用于制造运输行业中空产品的成型工艺。由于在此过程中工件的变形是大量高速行程的结果,因此即使即使发生了变形,Johnson-Cook本构定律(考虑到应变率)也似乎很适合用来表示材料的行为。该过程在寒冷的条件下进行。但是,文献中有关径向锻造分析的许多贡献都是基于简单的弹塑性公式。据我们所知,该假设尚未在径向锻造过程中得到验证。由于流动规律对模型有效性的重要性,因此本文的目的是分析使用弹性粘塑性配方代替弹性塑性配方对冷径向锻造过程进行建模的影响。在本文中,我们为Johnson-Cook和Ludwik的模拟选择了两种不同的定律,并在锻造力,产品的厚度,应变,应力和CPU时间方面比较了结果。对于本研究,我们使用AISI 4140钢,并且表示使用两种定律获得的结果之间的一致性很好。

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