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A numerical investigation of loss of crack tip constraint in a dynamically loaded ductile specimen

机译:动态加载延性试样裂纹尖端约束损失的数值研究

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摘要

The objectives of this paper are to study the applicability of a two-parameter (J-Q) characterisation of the elastic--plastic crack tip fields in a dynamically loaded ductile specimen and to ascertain the effect of loading rate J on the triaxiality parameter Q. To this end, 2D (plane strain) large deformation finite element analyses of a single edge notched specimen (SEN(T)) subjected to a tensile stress pulse are conducted. The material is assumed to obey the J2 flow theory of plasticity with small elastic strains and both rate independent and rate dependent behaviour are considered. The results demonstrate that even a deeply cracked SEN(T) specimen which maintains high triaxiality under quasi-static loading can exhibit progressive loss of triaxiality as the loading rate increases. Since this behaviour is observed for both rate independent and rate dependent case, it is attributed to inertial effects. The above phenomenon can satisfactorily explain retarded micro-void growth rates near a notch tip, and strong elevation in the dynamic fracture toughness at high loading rates, which have been reported in recent computational and experimental studies.
机译:本文的目的是研究动态加载的延性试样中弹塑性裂纹尖端场的两参数(JQ)表征的适用性,并确定加载速率J对三轴性参数Q的影响。为此,对承受拉应力脉冲的单边缺口试样(SEN(T))进行了二维(平面应变)大变形有限元分析。假定该材料遵循J2流动理论并具有小的弹性应变,并且考虑了速率无关和速率相关行为。结果表明,即使在准静态载荷下保持高三轴性的深裂纹SEN(T)试样,随着载荷率的增加,也会表现出三轴性的逐渐损失。由于这种行为在速率无关和速率相关的情况下都可以观察到,因此归因于惯性效应。上述现象可以令人满意地解释在缺口尖端附近微孔的生长速率降低,以及在高载荷速率下动态断裂韧性的强烈升高,这在最近的计算和实验研究中已有报道。

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