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Asymmetric yield locus evolution for HCP materials: a continuum constitutive modeling approach

机译:HCP材料的不对称屈服基因座演化:连续本构模型方法

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A continuum-based plasticity approach is considered to model the anisotropic hardening response of hexagonal closed packed (hcp) materials. A Cazacu-Plunkett-Barlat (CPB06) yield surface is modified to create anisotropic hardening in terms of the accumulated plastic strain. The anisotropy and asymmetry parameters are replaced with saturation-type functions and the new modified model is then optimized globally to fit the material response. Furthermore, the effect of the number of linear stress transformations performed on the deviatoric stress tensor is investigated on the capability of the model to capture the response from the experiments. By increasing the number of stress transformations, more flexibility is obtained. However, increasing the number of stress transformations increases the arithmetic calculations involved in the material model. The proposed approach is an effective and time efficient method to create material models with complex evolving tension/compression behavior.
机译:考虑使用基于连续体的可塑性方法来模拟六边形密堆积(hcp)材料的各向异性硬化响应。修改了Cazacu-Plunkett-Barlat(CPB06)屈服面,以根据累积的塑性应变产生各向异性硬化。各向异性和非对称性参数将替换为饱和度函数,然后对新修改的模型进行全局优化以适合材料响应。此外,还研究了线性应力变换次数对偏应力张量的影响,从而影响了模型捕获实验响应的能力。通过增加应力转换的数量,可以获得更大的灵活性。但是,增加应力转换的次数会增加材料模型中涉及的算术计算。所提出的方法是创建具有复杂的拉伸/压缩行为的材料模型的有效且省时的方法。

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