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Efficient and Robust Prediction of Localized Necking in Sheet Metals

机译:板材金属中局部颈缩的高效预测

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摘要

The recently proposed Critical Specific Tension (CST) model is jointly used with the well-known Marciniak and Kuczynski (M-K) model to predict localized necking in anisotropic sheet metals in the regime of negative and positive minor in-plane strains, respectively. A significantly simplified method is presented to calculate the critical tensile stress required in the CST model, without the need of iterative computations. In the present work the CST/M-K model is used along with a rate-independent phenomenological elasto-plastic constitutive model as well as the known visco-plastic self-consistent (VPSC) crystal plasticity model developed by Tome and Lebensohn. A comparison between experimental data and the limit strains predicted by means of the phenomenological constitutive model reveals a very good agreement. In order to validate the correctness of the non-trivial computational implementation of the VPSC-based CST/M-K model the predicted necking strains are compared with results obtained by using the phenomenological constitutive model. It is shown that the results of both approaches are in good agreement.
机译:最近提出的临界特定张力(CST)模型与众所周知的Marciniak和Kuczynski(M-K)模型共同使用,以预测阴性和阳性内部菌株的各向异性片金属中的局部颈缩。提出了一种显着简化的方法来计算CST模型中所需的临界拉伸应力,而无需迭代计算。在本工作中,CST / M-K型号与速率无关的现象塑料本构模型以及由Tome和Lebensohn开发的已知的粘塑性自给式(VPSC)晶体塑性模型。通过现象学基本模型预测的实验数据和限制应变之间的比较揭示了非常良好的一致性。为了验证基于VPSC的CST / M-K模型的非琐碎计算实施的正确性,将预测的颈菌菌与通过使用现象学组成型模型获得的结果进行比较。结果表明,两种方法的结果都很吻合。

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