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The effect of low stress triaxialities and deformation paths on ductile fracture simulations of large shell structures

机译:低应力三轴性和变形路径对大型壳结构延性断裂模拟的影响

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In accidental limit state analysis of ship structures and their components, the common assumption is that failure takes place in the plate field under multi-axial tension, thus most advancements in developing fracture criteria have focused on that region. In contrast, failure in low stress triaxialities is relatively unexplored territory in the context of large-scale crash analysis. The probability of this failure mode increases with the decreasing ductility that is characteristic of high and extra high strength steels. Therefore, ductile fracture simulations are performed with large thin-walled steel structures employing four different fracture criteria that differently account low stress triaxialities and deformation history. Criteria are compared as to their capabilities to reproduce and predict experimentally measured behaviour. Analyses demonstrate that failure under lower stress triaxialities affects the response significantly especially when complex deformation history is considered. Suggestions are made for the further enhancement of fracture criteria as well as experimental configurations employed for benchmarking failure criteria.
机译:在对船舶结构及其部件进行意外极限状态分析时,通常的假设是,在多轴张力下,板区会发生破坏,因此,制定断裂准则的大多数进展都集中在该区域。相反,在大规模碰撞分析的背景下,低应力三轴性的破坏是相对未开发的领域。这种失效模式的可能性随着塑性的降低而增加,这是高强度和超高强度钢的特征。因此,采用四个不同的断裂准则对大型薄壁钢结构进行延性断裂模拟,这些准则不同地考虑了低应力三轴性和变形历史。比较标准,以重现和预测实验测量的行为的能力。分析表明,在较低应力三轴性下的破坏会显着影响响应,尤其是考虑到复杂的变形历史时。提出了进一步提高断裂标准以及基准失效标准的实验配置的建议。

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