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Simulations of ductile fracture in an idealized ship grounding scenario using phenomenological damage and cohesive zone models

机译:使用现象学损伤和内聚力区域模型对理想化船舶着陆情况下的韧性断裂进行模拟

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摘要

Two complementary simulation methodologies for ductile fracture in large sheet metal components are presented and evaluated in this paper. The first approach is based on the phenomenological dilatational plasticity-damage model developed by Woelke and Abboud [46], which accounts for pressure-dependent volumetric damage growth through a scalar damage variable. The damage function represents phenomenologically micromechanical changes the material undergoes during the process of necking. Secondly, the cohesive zone model with an opening mode traction-separation law is employed to simulate the same ductile fracture problems accounting for significant variation of the multiaxial stress state along the crack path. Both methods are examined as to their capabilities to reproduce and predict the outcome of large-scale experimental fracture tests of welded and un-welded ductile plates subjected to large-scale penetration, simulating an idealized ship grounding. The results of the current study indicate that, with appropriate calibration, both approaches can be successfully employed to simulate ductile fracture in structural components under multiaxial stress. The advantages and shortcomings of each approach is discussed from the point of view of post-test numerical investigation as well as its predictive capabilities as an engineering tool.
机译:本文提出并评估了两种互补的大金属板件延性断裂模拟方法。第一种方法是基于由Woelke和Abboud [46]开发的现象学上的可塑性-损伤模型,该模型通过标量损伤变量说明了压力依赖性体积损伤的增长。损伤函数表示材料在缩颈过程中发生的微观力学变化。其次,采用具有开放模式牵引-分离定律的内聚区模型来模拟相同的延性断裂问题,这说明了沿裂纹路径的多轴应力状态存在显着变化。对这两种方法的能力进行了仿真和仿真,以验证它们能否再现和预测经受大规模穿透的焊接和未焊接延性板的大规模实验性断裂试验的结果。当前的研究结果表明,通过适当的校准,两种方法都可以成功地用于模拟多轴应力下结构部件的延性断裂。从测试后数值研究的角度及其作为工程工具的预测能力的角度,讨论了每种方法的优缺点。

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