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A Novel Damage Model to Predict Ductile Fracture Behavior for Anisotropic Sheet Metal

机译:各向异性薄板预测韧性断裂行为的新型损伤模型

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The purpose of the present work is to investigate the fracture behavior of anisotropic sheet metal under various stress states. Notched tension and flat-grooved tension tests at 0°, 45°, and 90° directions with respect to rolling direction were carried out by a hybrid experimental–numerical approach, and then a novel damage model was proposed by coupling Hill48’s criterion. Based on this, finite element method (FEM) analysis models were established. The force–displacement responses of experiments and simulations are in good agreement, which verify the FEM models. The predictability of the damage model established for the fracture behavior of anisotropic materials was studied by comparing the fracture displacements between experiments and simulations. It is found that the predictability of novel damage model is basically consistent with predictive results. The difference of damage locations and local strain evolutions at a 45° direction is greater than the other directions. In addition, stress triaxiality does not play a predominant role in the fracture process for notched tension specimens, while it does play a predominant role for flat-grooved tension specimens.
机译:本工作的目的是研究各向异性薄板在各种应力​​状态下的断裂行为。通过混合实验-数值方法,在相对于轧制方向的0°,45°和90°方向上进行了缺口拉力和平槽拉力测试,然后结合Hill48的标准提出了一种新的损伤模型。在此基础上,建立了有限元分析模型。实验和模拟的力-位移响应吻合良好,验证了有限元模型。通过比较实验和模拟之间的断裂位移,研究了为各向异性材料的断裂行为建立的损伤模型的可预测性。发现新型损伤模型的可预测性与预测结果基本一致。损伤位置和局部应变在45°方向上的差异大于其他方向。此外,应力三轴性在带槽拉伸试样的断裂过程中不发挥主要作用,而对于平槽拉伸试样则起主要作用。

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