首页> 外文会议>International Conference on Sheet Metal; 20070401-04; University of Palermo(IT) >Determination of yield locus of sheet metal at elevated temperatures: a novel concept for experimental set-up
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Determination of yield locus of sheet metal at elevated temperatures: a novel concept for experimental set-up

机译:确定高温下的钣金屈服轨迹:实验装置的新概念

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The constant demand of increasing performances and safety in vehicle industry has led significant innovations in the materials used in sheet metal forming processes. In particular, multiphase steels and lightweight alloys have known higher and higher importance, thanks to the development of new stamping processes at elevated temperatures, which guarantee, at the same time, better formability, lower springback and more accurate micro-structural control in the formed sheets. With respect to these aspects, the correct design and optimization of the new processes cannot prescind of the mechanical characterization of materials in biaxial stress conditions, especially when it strongly varies according to the stress and temperature. In this paper, a novel experimental set-up is presented for determining the in-plane yield locus of sheet metals at elevated temperatures. A cruciform specimen, whose geometry was optimized by numerical simulation, is used for the study of the yield locus in the range of biaxial tensile stresses. The test machine concept is based on punch-wedge mechanism, which uses the vertical movement of the press for the deformation of the specimen along two perpendicular axes. In the first part of the paper, the optimization of the cruciform specimen by thermo-mechanical FE analyses is outlined. Details on the experimental set-up are then given with the description of the apparatus, the measurement of plastic strains and the heating system for tests at elevated temperatures.
机译:不断增长的对汽车行业性能和安全性的需求导致了钣金成型工艺中所用材料的重大创新。尤其是,由于在高温下开发了新的冲压工艺,多相钢和轻质合金的重要性越来越高,这同时保证了更好的可成形性,较低的回弹力以及对成形件进行更精确的微结构控制。床单。关于这些方面,新工艺的正确设计和优化无法预知双轴应力条件下材料的机械特性,特别是当材料根据应力和温度变化很大时。在本文中,提出了一种新颖的实验装置,用于确定高温下钣金的面内屈服轨迹。十字形试样的几何形状通过数值模拟进行了优化,用于研究双轴拉伸应力范围内的屈服轨迹。测试机的概念基于冲头楔形机构,该机构利用压机的垂直运动使试样沿两个垂直轴变形。在本文的第一部分中,概述了通过热机械有限元分析对十字形试样进行的优化。然后,通过设备的描述,塑性应变的测量以及在高温下进行测试的加热系统,详细介绍实验设置。

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