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Plastic and fracture behavior of a dual phase steel sheet under quasi-static and dynamic loadings

机译:准静态和动态载荷下双相钢板的塑料和断裂行为

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Crack prediction is an important step of car design: its accuracy is crucial to avoid additional development costs and delays. The prediction of steel or aluminium sheets tearing is particularly challenging, and its simulation is not always reliable yet. This could be explained by the use of too simple fracture criteria based on a critical plastic strain that are uncoupled with the constitutive behavior (i.e. the material response is not affected by damage). To overcome this problem, coupled damage models are proposed in the literature. To select the appropriate constitutive equations to model the plastic and fracture behavior of a given material, various characterization tests are needed. A comprehensive experimental campaign that covers a wide range of stress states and loading rates was conducted. All tests can be performed on a tensile machine. From the results, an original set of constitutive equations was chosen from the literature to propose an extended Gurson-based damage model. A practical parameter identification procedure is proposed to calibrate the model on a few relevant specimen geometries. The model is then validated on another set of specimen geometries: comparisons between test results and simulations show a good agreement in terms of load-displacement curves for both quasi-static and dynamic loading conditions.
机译:裂缝预测是汽车设计的重要步骤:其准确性至关重要,以避免额外的开发成本和延误。钢或铝板撕裂的预测是特别具有挑战性的,并且其仿真并不总是可靠的。这可以通过使用太简单的裂缝标准来解释,基于临界塑性应变,其与组成型行为分开(即材料响应不受损坏的影响)。为了克服这个问题,在文献中提出了耦合损伤模型。为了选择适当的组成方程来模拟给定材料的塑料和断裂行为,需要各种表征测试。进行了一个涵盖广泛应力状态和装载率的全面的实验活动。所有测试都可以在拉伸机上进行。从结果中,从文献中选择了一组原始的组成方程,以提出延长的基于Gurson的损伤模型。提出了一种实用的参数识别程序,以校准少数相关标本几何形状的模型。然后在另一组样本几何形状上验证了模型:测试结果与模拟之间的比较显示了对准静态和动态负载条件的负载 - 位移曲线的良好一致性。

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