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Experimental analysis and modelling of the strain-rate sensitivity of sheet niobium

机译:铌铌应变率敏感性的实验分析与建模

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The niobium is currently used for the construction of the superconducting radio frequency (RF) Crab Cavity for the particle accelerator LHC at CERN in Geneva. An alternative technique to traditional forming methods is the electrohydraulic forming (EHF), in which ultrahigh-speed deformation of blank sheets is performed by using shockwaves electrically induced in water. A big effort is made for the analysis of the forming processes by FEM simulations, which require the definition of an appropriate flow stress material model. With this aim, in the present work, a testing campaign was performed in tension on sheet specimens with a rectangular cross-section at different strain-rates, up to 103 s-1. The obtained results showed the material is strongly sensitive to strain-rate, as expected for a pure BCC metal. The data, were processed via a reverse engineering procedure, based on finite element simulations of the experimental tests. This methodology allowed the identification of a tabular flow stress model (MAT_224 implemented in LSDYNA) for the prediction of the material behaviour as a function of the plastic strain, strain-rate and temperature.
机译:铌目前用于超导射频(RF)蟹腔在日内瓦的粒子加速器LHC在CERN的构造。另一种技术传统的成型方法是电动液压成形(EHF),其中的空白纸张的超高速变形是通过使用冲击波在水中电诱导进行。一个大的努力用于通过FEM仿真的成形工艺,其需要适当的流动应力材料模型的定义的分析作出。为了这个目的,在本工作中,测试运动在上片标本的张力与在不同的应变率的矩形横截面进行的,高达103个S-1。所得到的结果表明该物质是应变率强烈敏感,如预期的纯BCC金属。中的数据,经由反向工程方法进行了处理,基于所述实验测试的有限元模拟。这种方法允许以表格流动应力模型的识别(在MAT_224 LS-DYNA实施)为材料的行为作为塑性应变,应变速率和温度的函数的预测。

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