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On the improvement of formability and the prediction of forming limit diagrams at fracture by means of constitutive modelling

机译:基于本构型建模的裂缝成形性成形性和预测的提高

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Sheet metal forming processes are well-established in production technology for the manufacturing of large quantities. To increase the formability, the processing limit of a single forming process can be enhanced by a combination of quasi-static and high-speed forming process. The forming limits for both operations for the aluminum alloy EN AW 6082 T6 obtained via simulations and experiment are investigated in a research cooperation between the Institute of Materials Science (IW) and the Institute of Applied Mechanics (IFAM). Significant changes in forming limits with higher strain rates are indicated by the experimental results. Here, the forming limit curves move to the lower right hand side. The processes are simulated and the FLD at fracture are predicted by means of finite element analysis. The constitutive model is based on the multiplicative split of the deformation gradient. It is coupled with ductile damage and combines nonlinear kinematic and isotropic hardening. The kinematic hardening component represents a continuum extension of the classical rheological model of Armstrong-Frederick kinematic hardening. The coupling of damage and viscoplasticity is carried out following the well-known concept of effective stress and the principle of strain equivalence. Using these powerful tools the simulation of dynamic effects and the prediction of forming limit diagrams at fracture shows good correlation with the experiments.
机译:钣金成型工艺在生产技术中良好地建立,用于制造大量。为了提高可成形性,可以通过准静态和高速形成过程的组合来增强单个成形过程的处理限制。在材料科学研究所(IW)与应用力学研究所(IFAM)之间的研究合作中,研究了通过模拟和实验获得的铝合金EN 6082 T6的操作限制。实验结果表明了具有较高应变率的形成限制的显着变化。这里,形成限制曲线移动到右下方。通过有限元分析来预测模拟过程,并且裂缝处的FLD预测。本构体模型基于变形梯度的乘法分裂。它与韧性损伤结合并结合非线性运动和各向同性硬化。运动淬火组分代表了Armstrong-Frederick运动凝固硬化的经典流变模型的连续延伸。在有效应力的众所周知的概念和应变当量原理之后,进行损伤和粘盖性的偶联。使用这些强大的工具,动态效果的模拟和骨折上形成限位图的预测显示出与实验的良好相关性。

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