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Assessment of damage models in sheet metal forming for industrial applications

机译:评估工业应用中钣金成形中的损坏模型

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Due to increasing demands to reduce C02-emission and to augment occupant's safety new modern materials are developed ongoing. Because of relatively low production costs, high strength and simultaneously good formability the advanced high strength steels (AHSS) are applied among others for the lightweight design of body-in-white components in the automotive industry. Their already mentioned properties follow from the presence of mixed mild and hard ferrous phases. Due to this multiphase microstructure of the most AHSS steels, a complex material and damage behavior is observed during forming. The damage grows in a ductile manner during plastic flow and the cracks appear without necking. They are often characterized as the so called shear cracks. The damage predictions with standard methods like the forming limit curve (FLC) lack accuracy and reliability. These methods are based on the measurement of linear strain paths. On the other hand ductile damage models are generally used in the bulk forming and crash analysis. The goal is to prove if these models can be applied for the damage prediction in sheet metal forming and which troubles have to be overcome. This paper demonstrates the capability of the Gurson-Tvergaard-Needleman (GTN) model within commercial codes to treat industrial applications. The GTN damage model describes the existence of voids and they evolution (nucleation, growth and coalescence). After a short introduction of the model the finite element aspects of the simulative damage prediction have been investigated. Finally, the determination of the damage model parameters is discussed for a test part.
机译:由于减少CO 2排放和提高乘员安全性的需求不断增加,正在开发新的现代材料。由于相对较低的生产成本,高强度以及良好的可成形性,先进的高强度钢(AHSS)尤其用于汽车行业中白车身部件的轻量化设计。它们已经提到的性能来自混合的软铁和硬铁相的存在。由于大多数AHSS钢的这种多相微观结构,在成型过程中观察到了复杂的材料和破坏行为。在塑性流动期间,损伤以延性方式增长,并且出现裂纹而没有颈缩。它们通常被称为所谓的剪切裂纹。用标准方法(如成形极限曲线(FLC))进行的损伤预测缺乏准确性和可靠性。这些方法基于线性应变路径的测量。另一方面,延性损伤模型通常用于整体成形和碰撞分析。目的是证明这些模型是否可以用于钣金成形中的损伤预测,以及必须克服哪些问题。本文演示了商业代码中Gurson-Tvergaard-Needleman(GTN)模型处理工业应用程序的能力。 GTN损伤模型描述了空隙的存在及其演化(成核,生长和聚结)。在简短介绍该模型之后,对模拟损伤预测的有限元方面进行了研究。最后,针对测试零件讨论了损伤模型参数的确定。

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