...
首页> 外文期刊>Computational Materials Science >Propagation behaviour of microstructural short fatigue cracks in the high-cycle fatigue regime
【24h】

Propagation behaviour of microstructural short fatigue cracks in the high-cycle fatigue regime

机译:微结构短疲劳裂纹在高周疲劳状态下的扩展行为

获取原文
获取原文并翻译 | 示例

摘要

in the high-cycle fatigue regime, it is assumed that crack initiation mechanisms and short fatigue crack propagation processes govern fatigue life of a component. Moreover, it is now becoming accepted that the conventional fatigue limit does not imply complete reversibility of plastic strain and is connected to crack initiation. However, interaction of the crack tip with microstructural barriers, such as, e.g. grain boundaries or second phases, leads to a decrease and eventually to a stop in the crack propagation. In the present contribution, examples for propagating and non-propagating conditions of short fatigue cracks in the microstructure of a duplex steel are given, quantified by means of automated EBSD. To classify the results within the scope of predicting the service life for HCF- and VHCF-loading conditions, a numerical model based on the boundary element method has been developed, describing crack propagation by means of partially irreversible dislocation glide on crystallographic slip planes in a polycrystalline model microstructure (Voronoi cells). This concept is capable to account for the strong scattering in fatigue life for very small strain amplitudes and to contribute to the concept of tailored microstructures for improved cyclic-loading behaviour.
机译:在高周疲劳状态下,假定裂纹的萌生机理和短的裂纹扩展过程控制着部件的疲劳寿命。而且,现在已经被接受的是,传统的疲劳极限并不意味着塑性应变的完全可逆性,而是与裂纹萌生有关。但是,裂纹尖端与微观结构的阻挡层,例如,裂纹的相互作用。晶界或第二相导致裂纹扩展的减少并最终停止。在本发明中,给出了在双相钢的微观结构中短疲劳裂纹的扩展和非扩展条件的示例,并通过自动EBSD进行了量化。为了在预测HCF和VHCF加载条件的使用寿命的范围内对结果进行分类,已经开发了基于边界元方法的数值模型,该模型通过部分不可逆位错滑移描述了晶体滑移平面中的裂纹扩展。多晶模型的微观结构(Voronoi细胞)。该概念能够解决非常小的应变幅度下疲劳寿命中的强散射问题,并有助于定制微结构以改善循环载荷性能的概念。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号