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首页> 外文期刊>International Journal for Numerical Methods in Engineering >Discrete crack modelling of ductile fracture driven by non-local softening plasticity
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Discrete crack modelling of ductile fracture driven by non-local softening plasticity

机译:非局部软化塑性驱动的塑性断裂离散裂纹建模

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摘要

A combined approach towards ductile damage and fracture is presented, in the sense that a continuous material degradation is coupled with a discrete crack description for large deformations. Material degradation is modelled by a gradient enhanced damage-hyperelastoplasticity model. It is assumed that failure occurs solely due to plastic straining, which is particularly relevant for shear dominated problems, where the effect of the hydrostatic stress in triggering failure is less important. The gradient enhancement eliminates pathological localization effects which would normally result from the damage influence. Discrete cracks appear in the final stage of local material failure, when the damage has become critical. The rate and the direction of crack propagation depend on the evolution of the damage field variable, which in turn depends on the type of loading. In a large strain finite element framework, remeshing allows to incorporate the changing crack geometry and prevents severe element distortion. Attention is focused on the robustness of the Computations, where the transfer of variables, which is needed after each remeshing, plays a crucial role. Numerical examples are shown and comparisons are made with published experimental results. Copyright (c) 2005 John Wiley & Sons, Ltd,
机译:在某种意义上,提出了一种针对延性破坏和断裂的组合方法,在这种意义上,材料的连续降解与大变形的离散裂纹描述相结合。通过梯度增强的损伤-超弹塑性模型对材料降解进行建模。假定失效仅是由于塑性应变而发生的,这对于剪切为主的问题尤为重要,在该问题中,静水应力在触发失效方面的影响不那么重要。梯度增强消除了通常由损坏影响而导致的病理学局部影响。当损伤变得很严重时,离散裂纹会出现在局部材料失效的最后阶段。裂纹扩展的速度和方向取决于损伤场变量的演变,而损伤场变量又取决于载荷的类型。在大型应变有限元框架中,重新网格化可以合并不断变化的裂纹几何形状并防止严重的单元变形。注意力集中在计算的稳健性上,其中在每次重新网格化之后需要转移的变量起着至关重要的作用。显示了数值示例,并与已发布的实验结果进行了比较。版权所有(c)2005 John Wiley&Sons,Ltd,

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