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A damage to crack transition model accounting for stress triaxiality formulated in a hybrid non-local implicit discontinuous Galerkin - cohesive band model framework

机译:混合非局部隐式不连续Galerkin-内聚能带模型框架中考虑到应力三轴性的裂纹转变模型的损伤。

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摘要

Modelling the entire ductile fracture process remains a challenge. On the one hand, continuous damage models succeed in capturing the initial diffuse damage stage but are not able to represent discontinuities or cracks. On the other hand, discontinuous methods, as the cohesive zones, which model the crack propagation behaviour, are suited to represent the localised damaging process. However, they are unable to represent diffuse damage. Moreover, most of the cohesive models do not capture triaxiality effect.In this paper, the advantages of the two approaches are combined in a single damage to crack transition framework. In a small deformation setting, a non-local elastic damage model is associated with a cohesive model in a discontinuous Galerkin finite element framework. A cohesive band model is used to naturally introduce a triaxiality-dependent behaviour inside the cohesive law. Practically, a numerical thickness is introduced to recover a 3D-state, mandatory to incorporate the in-plane stretch effects. This thickness is evaluated to ensure the energy consistency of the method and is not a new numerical parameter. The traction-separation law is then built from the underlying damage model.
机译:对整个韧性断裂过程进行建模仍然是一个挑战。一方面,连续损伤模型可以成功捕获初始弥散损伤阶段,但不能表示不连续或裂缝。另一方面,不连续的方法,如用于模拟裂纹扩展行为的内聚区,适用于表示局部破坏过程。但是,它们不能代表弥散性损坏。而且,大多数内聚模型不能捕获三轴效应。本文将两种方法的优点结合在一个单一的裂纹过渡框架损伤中。在较小的变形设置中,非局部弹性损伤模型与不连续的Galerkin有限元框架中的内聚模型相关联。内聚能带模型用于自然地将三轴性相关行为引入内聚律。实际上,引入了数字厚度以恢复3D状态,这是合并平面内拉伸效果所必需的。评估该厚度以确保方法的能量一致性,而不是新的数值参数。然后从潜在的损坏模型中建立牵引力分离法则。

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