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Numerical determination of stress intensity factors: J-integral and modified virtual crack closure technique

机译:应力强度因子的数值测定:J-积分和改进的虚拟裂纹闭合技术

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Together with the development of numerical tools for stress-strain analysis, approaches to deal with fracture mechanics problems have been the object of continuous improvement. For linear-elastic fracture mechanics problems, the determination of Stress Intensity Factors (SIF) is available as a post-processing possibility in most commercial finite element software packages such as Ansys and Abaqus, allowing the users to perform straightforward assessments of cracked mechanical parts or structures. However, available techniques for SIF determination in post-processing of these commercial solutions are almost limited to the so-called displacement extrapolation and J-integral techniques. In the present work, the implementation of the J-integral technique is revised considering a new finite element software, labeled as Omicron. Furthermore, a more recent technique, the modified Virtual Crack Closure Technique (mVCCT) is also implemented and evaluated. For results assessment, finite element models were built in Omicron and SIFs were determined considering the J-integral and mVCCT approaches. From this study, it is concluded that the mVCCT implementation is simpler than the J-integral and it allows to determine accurately SIFs. Nevertheless, this technique is not straightly available in the current versions of the commercial packages for finite element modeling, which require separate post-processing for SIF determination.
机译:随着用于应力 - 应变分析的数值工具的开发,处理骨折力学问题的方法是持续改进的目的。对于线性弹性断裂力学问题,应力强度因子的确定(SIF)可作为在大多数商业有限元软件包(如ANSYS和ABAQUS)中的后处理可能性,允许用户对破裂的机械部件进行直接评估或结构。然而,这些商业解决方案后后处理的SIF测定的可用技术几乎限于所谓的位移外推和J-积分技术。在目前的工作中,考虑到omicron标记为新的有限元软件,修改了J-Integral技术的实现。此外,还实现和评估了更新的技术,修改的虚拟裂缝闭合技术(MVCCT)。对于结果评估,建立有限元模型在omicron中,考虑到J-Intional和MVCCT方法确定SIFS。从本研究开始,得出结论,MVCCT实现比J-Integral更简单,它允许精确确定SIF。然而,该技术在用于有限元建模的商业包装的当前版本中不可公开可用,这需要单独的SIF确定后处理。

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