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Dislocation emission and crack growth in 3D bcc iron crystals under biaxial loading by atomistic simulations

机译:原子模拟在双轴载荷下3D bcc铁晶体的位错发射和裂纹扩展

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This paper is devoted to the study of the ductile-brittle behavior of a central nanocrack ((1) over bar 10)[110] (crack plane/crack front) under biaxial loading via free 3D molecular dynamics (MD) simulations, as well as the comparison of MD results with continuum predictions concerning T-stress. The so called T-stress is a constant stress component acting along the crack plane, which should be considered (together with the stress intensity factor K) in the assessment of brittle-ductile behavior, namely, in the case of the short cracks. Previous 2D atomistic simulations under plane strain conditions indicated that the level of T-stress (controlled by the biaxiality ratio sB/sA from the external loading) affects dislocation emission from the crack and can cause the ductile-brittle transition. The plane strain simulations using the periodic or translational boundary conditions in the bcc lattice have certain limitations: they enable the in-plane dislocation emission (Burgers vector lies in the observation plane), but they do not allow the complete dislocation emission on the all slip systems favored by the shear stress. As presented, our new free 3D atomistic simulations (without periodic or symmetry conditions) enable the activity of the all favored slip systems. Thus, they offer a more realistic insight into the microscopic processes generated by the crack itself in dependence on the T-stress level. Published under license by AIP Publishing.
机译:本文还通过自由3D分子动力学(MD)模拟,研究双轴载荷下中央纳米裂纹((在棒10上的(1))[110](裂纹平面/裂纹前沿))的延性脆性行为。作为MD结果与有关T应力的连续预测的比较。所谓的T应力是沿裂纹平面作用的恒定应力分量,在评估脆性-延性行为时,即在短裂纹的情况下,应将其(与应力强度因子K一起)考虑在内。先前在平面应变条件下进行的2D原子模拟表明,T应力的水平(受外部载荷的双轴比sB / sA控制)会影响裂纹的位错发射,并可能导致韧性-脆性转变。使用bcc晶格中的周期性或平移边界条件进行平面应变模拟具有某些局限性:它们可以实现面内位错发射(Burgers矢量位于观察平面中),但是它们不允许在所有滑移上完全位错发射受剪应力青睐的系统。如所示,我们新的免费3D原子模拟(没有周期性或对称性条件)使所有喜欢的滑移系统都能活动。因此,它们根据T应力水平对裂纹本身产生的微观过程提供了更现实的见解。由AIP Publishing授权发布。

著录项

  • 来源
    《Journal of Applied Physics 》 |2019年第7期| 075115.1-075115.11| 共11页
  • 作者单位

    Inst Thermomech ASCR Vvi Dolejskova 5 Prague 18200 8 Czech Republic;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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