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Crack paths at multiple-crack systems in anisotropic structures: simulation and experiment

机译:各向异性结构中多裂纹系统的裂纹路径:仿真与实验

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This paper is targeted on numerical methods for accurate crack tip loading analysis and crack path prediction. Those are based on finite element calculations of the boundary value problem. Applying path-independent integrals to curved cracks in order to accurately calculate the J-integral, energy release rate (ERR) or stress intensity factors (SIF) is still not state of the art. Contours which are not confined to the crack tip require special analytical preparation and numerical treatment to supply results which are sufficiently precise for reliable crack path prediction. Methods to improve the calculation of the J-integral and the interaction integral (I-integral) are presented. In particular, the latter has never been applied to strongly curved cracks. Also, efficient methods for the loading analysis and crack growth simulation of multiple interacting cracks based on path-independent integrals are presented. The anisotropy of fracture toughness is taken into account being a crucial part of the numerical model. Experiments are carried out with specimens made of aluminum alloy Al-7075, comparing subcritically grown cracks with simulations.
机译:本文针对用于精确裂纹尖端载荷分析和裂纹路径预测的数值方法。这些是基于边界值问题的有限元计算。为了精确地计算J积分,将路径无关的积分应用于弯曲裂纹,能量释放率(ERR)或应力强度因子(SIF)仍不是最新技术。不限于裂纹尖端的轮廓需要特殊的分析准备和数值处理,以提供足够精确的结果以可靠地预测裂纹路径。提出了改进J积分和相互作用积分(I-integral)计算的方法。特别地,后者从未应用于强弯曲的裂纹。此外,提出了基于路径独立积分的多相互作用裂纹的载荷分析和裂纹扩展模拟的有效方法。断裂韧性的各向异性被认为是数值模型的关键部分。实验是对由铝合金Al-7075制成的试样进行的,将亚临界生长的裂纹与模拟进行了比较。

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