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NUMERICAL AND EXPERIMENTAL INVESTIGATIONS OF KEY ASSUMPTIONS OF ANALYTICAL FAILURE MODELS IN SHEET METAL FORMING

机译:金属板成形中分析故障模型关键假设的数值和实验研究

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In this paper, the key assumptions in the M-K and effective stress ratio models are investigated for AISI 1018 steel specimens with a thickness of 0.78 mm using experimental and numerical data from Marciniak tests. The experimental procedure included Digital Imaging Correlation (DIC) to measure the major and minor in-plane strains. Strain components were obtained at points inside (i.e., the defect region) and adjacent (i.e., the safe regions) to the high strain concentrations for four different strain paths. In the numerical analysis, FEA simulations with Marc Mentat were performed with shell elements to investigate the four specimen geometries. The key assumptions of interest are the incremental major strain ratio from M-K model and the critical stress concentration factor from effective stress ratio model. Thus, the mechanics- and material-based failure phenomena in these two analytical models are examined in this paper to provide insight into the material behavior at failure.
机译:本文研究了M-K和有效应力比模型中的关键假设,用于厚度为0.78mm的AISI 1018钢样品,使用来自Marciniak测试的实验和数值数据。实验程序包括测量主要和轻微的面内菌株的数字成像相关性(DIC)。在四个不同应变路径的高应变浓度下,在内部(即,缺陷区域)和相邻(即,安全区域)的点处获得应变组分。在数值分析中,使用壳体元件进行MARC Mentat的FEA模拟,以研究四个样本几何形状。感兴趣的关键假设是来自M-K模型的增量主要应变比和来自有效应力比模型的临界应力集中因子。因此,在本文中检查了这两种分析模型中的基于机械和材料的失效现象,以便在失败时提供洞察材料行为。

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