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首页> 外文期刊>International Journal of Plasticity >Multiscale modeling of plasticity based on embedding the viscoplastic self-consistent formulation in implicit finite elements
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Multiscale modeling of plasticity based on embedding the viscoplastic self-consistent formulation in implicit finite elements

机译:基于将粘塑性自洽公式嵌入隐式有限元中的可塑性多尺度建模

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This paper is concerned with the multiscale simulation of plastic deformation of metallic specimens using physically-based models that take into account their polycrystalline microstructure and the directionality of deformation mechanisms acting at single-crystal level. A polycrystal model based on self-consistent homogenization of single-crystal viscoplastic behavior is used to provide a texture-sensitive constitutive response of each material point, within a boundary problem solved with finite elements (FE) at the macroscale. The resulting constitutive behavior is that of an elasto-viscoplastic material, implemented in the implicit FE code ABAQUS. The widely-used viscoplastic selfconsistent (VPSC) formulation for polycrystal deformation has been implemented inside a user-defined material (UMAT) subroutine, providing the relationship between stress and plastic strain-rate response. Each integration point of the FE model is considered as a polycrystal with a given initial texture that evolves with deformation. The viscoplastic compliance tensor computed internally in the polycrystal model is in turn used for the minimization of a suitable-designed residual, as well as in the construction of the elasto-viscoplastic tangent stiffness matrix required by the implicit FE scheme. Uniaxial tension and simple shear of an FCC polycrystal have been used to benchmark the accuracy of the proposed implicit scheme and the correct treatment of rotations for prediction of texture evolution. In addition, two applications are presented to illustrate the potential of the multiscale strategy: a simulation of rolling of an FCC plate, in which the model predicts the development of different textures through the thickness of the plate; and the deformation under 4-point bending of textured HCP bars, in which the model captures the dimensional changes associated with different orientations of the dominant texture component with respect to the bending plane.
机译:本文关注的是使用基于物理的模型对金属试样的塑性变形进行多尺度模拟,考虑到它们的多晶微观结构和作用于单晶水平的变形机制的方向性。在宏问题上用有限元(FE)解决的边界问题内,基于单晶粘塑性行为的自洽均质化的多晶模型可提供每个材料点的纹理敏感本构响应。所得的本构行为是弹性隐塑性材料的本构行为,以隐式FE代码ABAQUS实现。在用户定义的材料(UMAT)子程序内部已实现了用于多晶变形的广泛使用的粘塑性自洽(VPSC)配方,提供了应力与塑性应变率响应之间的关系。 FE模型的每个积分点都被认为是具有给定初始纹理且随变形而演化的多晶。在多晶模型中内部计算的粘塑性顺应张量又用于最小化适当设计的残差,以及用于隐式有限元方法所需的弹粘塑性切线刚度矩阵的构造。 FCC多晶的单轴张力和简单剪切已用于基准测试所提出的隐式方案的准确性以及对旋转的正确处理以预测纹理的演变。此外,还提供了两个应用程序来说明多尺度策略的潜力:FCC板的轧制模拟,其中模型通过板的厚度预测不同纹理的发展;以及带纹理的HCP钢筋在4点弯曲下的变形,其中该模型捕获了与主要纹理分量相对于弯曲平面的不同方向相关的尺寸变化。

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