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Modeling of Forming Limit Bands for Strain-Based Failure-Analysis of Ultra-High-Strength Steels ?

机译:超高强度钢基于应变的失效分析的成形极限带建模

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摘要

Increased passenger safety and emission control are two of the main driving forces in the automotive industry for the development of light weight constructions. For increased strength to weight ratio, ultra-high-strength steels (UHSSs) are used in car body structures. Prediction of failure in such sheet metals is of high significance in the simulation of car crashes to avoid additional costs and fatalities. However, a disadvantage of this class of metals is a pronounced scatter in their material properties due to e.g., the manufacturing processes. In this work, a robust numerical model is developed in order to take the scatter into account in the prediction of the failure in manganese boron steel (22MnB5). To this end, the underlying material properties which determine the shapes of forming limit curves (FLCs) are obtained from experiments. A modified Marciniak–Kuczynski model is applied to determine the failure limits. By using a statistical approach, the material scatter is quantified in terms of two limiting hardening relations. Finally, the numerical solution obtained from simulations is verified experimentally. By generation of the so called forming limit bands (FLBs), the dispersion of limit strains is captured within the bounds of forming limits instead of a single FLC. In this way, the FLBs separate the whole region into safe, necking and failed zones.
机译:乘客安全性和排放控制的提高是汽车行业发展轻型结构的两个主要动力。为了提高强度重量比,车身结构中使用了超高强度钢(UHSS)。预测此类金属板的故障在模拟车祸中具有重要意义,以避免额外的成本和死亡人数。但是,这类金属的缺点是由于例如制造过程而导致其材料性能的明显分散。在这项工作中,开发了一个鲁棒的数值模型,以便在预测锰硼钢(22MnB5)的破坏时考虑到散射。为此,从实验中获得了确定成形极限曲线(FLC)形状的基础材料性能。修改后的Marciniak-Kuczynski模型用于确定破坏极限。通过使用统计方法,可以根据两个极限硬化关系来量化材料散布。最后,通过仿真验证了数值解的有效性。通过生成所谓的成形极限带(FLB),可以在成形极限的边界内捕获极限应变的分散,而不是单个FLC。这样,FLB将整个区域分为安全区域,颈缩区域和故障区域。

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