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Physically-motivated elasto-visco-plastic model for the large strain-rate behavior of steels

机译:钢的大应变速率行为的物理弹塑性-粘塑性模型

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A physically based elasto-visco-plastic constitutive model is presented and compared to experimental results for a DD14 mild steel. The model requires significantly fewer material parameters compared to other visco-plasticity models from the literature while exhibiting very good accuracy. Accordingly, the parameter identification is simple and intuitive, requiring a relatively small set of experiments. The strain-rate sensitivity modeling is not restricted to a particular hardening law and thus provides a general framework in which advanced hardening equations can be adopted and compared. The model has been implemented in the commercial finite element code Abaqus/Explicit. First predictions compared to experiments are analyzed and underline the effect of hardening law and strain-rate sensitivity on 3D finite element simulations. The model has been also applied as the basis for a homogenization approach at the phase scale; preliminary investigations showed the benefits of coupling such an approach with scale-transition technique where microstructure-relevant data can explicitly enter the model and may be used for material design simulations.
机译:提出了基于物理的弹塑性-粘塑性本构模型,并将其与DD14低碳钢的实验结果进行了比较。与文献中的其他粘塑性模型相比,该模型所需的材料参数要少得多,同时具有非常好的准确性。因此,参数识别简单而直观,需要相对较少的实验。应变率敏感性建模不限于特定的硬化规律,因此提供了可采用和比较先进的硬化方程的通用框架。该模型已在商业有限元代码Abaqus / Explicit中实现。分析了与实验相比的第一个预测,并强调了硬化规律和应变率敏感性对3D有限元模拟的影响。该模型也已被用作相规模均质化方法的基础。初步研究显示了将这种方法与比例转换技术结合使用的好处,其中与微观结构相关的数据可以显式输入模型,并可用于材料设计仿真。

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