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Crystal plasticity based finite element modelling of large strain deformation in AM30 magnesium alloy

机译:基于晶体塑性的AM30镁合金大变形的有限元建模

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摘要

In this paper, the finite strain plastic deformation of AM30 magnesium alloy has been simulated using the crystal plasticity finite element method. The simulations have been carried out using a rate-dependent elasticviscoplastic crystal plasticity constitutive model implemented in a user defined material subroutine (UMAT) in the commercial software LS-DYNA. The plastic deformation mechanisms accounted for in the model are the slip systems in the matrix (parent grain), extension twinning systems and the slip systems inside the extension twinned regions. The parameters of the constitutive model have been calibrated using the experimental data. The calibrated model has then been used to predict the deformation of AM30 magnesium alloy in bending and simple shear. For the bending strain path, the effects of texture on the strain accommodated by the deformation mechanisms and bending moment have been investigated. For simple shear, the effects of texture on the relative activity of deformation mechanisms, shear stress and texture evolution have been investigated. Also, the effect of twinning on shear stress and texture evolution has been studied. The numerical analyses predicted a more uniform strain distribution during bending and simple shear for rolled texture compared with extruded texture.
机译:本文采用结晶塑性有限元方法模拟了AM30镁合金的有限应变塑性变形。使用在软件LS-DYNA中的用户定义的材料子例程(UMAT)中实现的速率相关的弹性粘塑性晶体可塑性本构模型进行了模拟。模型中考虑的塑性变形机制是基体(母粒)中的滑动系统,延伸孪生系统和延伸孪生区域内部的滑动系统。本构模型的参数已使用实验数据进行了校准。然后将校准后的模型用于预测AM30镁合金在弯曲和简单剪切作用下的变形。对于弯曲应变路径,已经研究了纹理对变形机制和弯曲力矩所适应的应变的影响。对于简单剪切,已经研究了纹理对变形机制,剪切应力和纹理演变的相对活动的影响。此外,还研究了孪晶对剪切应力和织构演变的影响。数值分析预测,与挤压纹理相比,轧制纹理在弯曲和简单剪切过程中的应变分布更加均匀。

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