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Generation of Forming Limit Bands for Ultra-High-Strength Steels in Car Body Structures

机译:在汽车体结构中的超高强度钢形成限位带的产生

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The application of ultra-high-strength steels in safety-related automotive components has led to higher safety levels as well as weight reduction. Nevertheless, this class of advanced high-strength steels (AHSS) show material scatter due to its manufacturing processes. To address this problem in advance, it is of significance not only to model the failure of the sheet metal but also to specify a band for the necking regime. The former is described by a forming limit curve (FLC), whereas a forming limit band (FLB) introduces the upper and lower bounds for the permissible strains. The objective of the present work is to generate a robust prediction of the strain-based failure of the sheet metal during a car crash. The FLCs are generated numerically applying a modified Marciniak-Kuczynski (MK) model, where the existence of an angled groove is mandatory. This assures to obtain the maximum admissible strain. In addition, a zero extension angle is utilized for the left hand side of the FLC (tension-compression). The material scatter is captured in experiments and applied in the hardening relations. Necking strains are recorded experimentally by a digital image correlation based system (ARAMIS). Later, they are fit into the FLC based on an inhomogeneity parameter f_i from the MK model. In order to generate a theoretical FLB, first a statistical approach is exploited to take the experimental data into consideration. Eventually, the forming limit band distinguishes between safe, necking and failed regions.
机译:超高强度钢在安全相关的汽车组件中的应用导致了更高的安全水平和重量。尽管如此,这类先进的高强度钢(AHSS)由于其制造过程而显示了材料散射。为了提前解决这个问题,不仅可以模拟金属板的故障,还具有重要意义,而且还具有重要意义,而且还具有重要的意义,还具有重要性,而且还具有指定颈缩方案的频带。前者由形成限位曲线(FLC)描述,而形成限位带(FLB)引入允许菌株的上部和下界。本作作品的目的是在车祸期间产生对金属板金属的基于应变的故障的鲁棒预测。 FLC在数值上应用修改的Marciniak-kuczynski(MK)模型,其中强制性的凹槽的存在是强制性的。这确保获得最大可允许的应变。另外,零延伸角用于FLC的左侧(张力 - 压缩)。在实验中捕获材料散射并应用于硬化关系中。通过基于数字图像相关的系统(Aramis)实验记录缩颈菌株。后来,它们根据MK模型的不均匀性参数F_I拟合FLC。为了产生理论上的FLB,首先利用统计方法来考虑实验数据。最终,形成限位带区分开在安全,颈缩和失败的区域之间。

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