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Investigation of the flange earring of deep-drawing aluminum sheets by rate-independent polycrystalline plasticity finite element analysis

机译:速率无关的多晶塑性有限元分析法研究深冲铝板的法兰耳环

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摘要

Plastic anisotropy, which exerts evident influence on the formability of sheet metals, is mainly caused by crystalline texture and its evolution. In this paper, a rate-independent crystalline plasticity constitutive model is developed and introduced into elasto-plastic dynamic explicit finite element method. The crystal orientations are assigned to FE integration points, which represent crystals and can rotate individually, according to characteristics of orientation distribution function in orientation space. "Successive integration method" is employed to determine active slip systems and calculate plastic strain rate. Then the cylindrical cup deep-drawing processes of rolled and annealing aluminum blanks are simulated and texture evolution is calculated based on the proposed rate-independent crystalline plasticity finite element method. The simulation results show good agreement with experimental ones. Finally, the influences of two initially typical crystal orientations on flanging earring are numerically analyzed, which is helpful to explain the experimental results.
机译:塑性各向异性对钣金的可成形性产生明显影响,主要是由晶体织构及其演变引起的。本文建立了一种与速率无关的晶体可塑性本构模型,并将其引入弹塑性动态显式有限元方法。根据取向空间中取向分布函数的特性,将晶体取向分配给代表晶体并且可以单独旋转的FE积分点。 “成功积分法”用于确定主动滑移系统并计算塑性应变率。然后,基于所提出的与速率无关的晶体塑性有限元方法,模拟了轧制和退火铝坯件的圆柱杯深冲过程,并计算了织构演化。仿真结果与实验结果吻合良好。最后,数值分析了两个初始典型晶体取向对折边耳环的影响,这有助于解释实验结果。

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