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EBSD based studies on various modes of cyclic deformation at 923 K in a type 316LN stainless steel

机译:基于EBSD的316LN不锈钢在923 K下各种循环变形模式的研究

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摘要

The study presents an EBSD based investigation on the nature of deformation occurring under different modes of cyclic loading viz. low cycle fatigue (LCF), creep-fatigue interaction (CF) and LCF-creep-HCF. Compared to LCF, cyclic life was found to decrease for CF or LCF-creep-HCF loading conditions. This was attributed to the additional damage contributions from creep in CF cycling and a combination of creep and HCF in LCF-creep-HCF loading conditions, as substantiated through a highly intergranular fracture observed in those cases. Local misorientation map derived from EBSD showed that the misorientation spread is highest for the LCF condition compared to CF and LCF-creep-HCF. This was attributed to the enhanced thermal recovery taking place during CF and LCF-creep-HCF conditions in comparison to LCF. The dislocations generated during cycling rearrange themselves into a stabilized substructure in the form of cells in the above loading conditions leading to a lower value of local misorientation in those cases. This was also accompanied by a significant decrease in number of twins in CF and LCF-creep-HCF conditions compared to LCF. The dislocation-twin interaction responsible for the process of de-twinning was found to be expedited in the former cases owing to a higher thermal recovery.
机译:这项研究提出了一个基于EBSD的调查方法,用于研究在不同循环载荷模式下发生的变形的性质。低周疲劳(LCF),蠕变疲劳相互作用(CF)和LCF蠕变-HCF。与LCF相比,发现CF或LCF蠕变-HCF加载条件下的循环寿命降低。这归因于CF循环中蠕变以及LCF蠕变-HCF加载条件下蠕变和HCF的组合所带来的额外破坏贡献,这些情况下通过观察到的高度晶间裂缝证实了这一点。从EBSD得出的局部取向错误图显示,与CF和LCF蠕变-HCF相比,LCF条件下的取向错误扩散最高。这是由于与LCF相比,CF和LCF蠕变-HCF条件下发生的热回收率提高。在上述载荷条件下,在自行车运动过程中产生的位错将自身重新排列成细胞形式的稳定的亚结构,从而导致较低的局部取向误差值。与LCF相比,在CF和LCF蠕变-HCF条件下,双胞胎的数量也显着减少。发现在前一种情况下,由于较高的热回收率,导致解缠过程的位错-孪生相互作用得以加快。

著录项

  • 来源
    《Materials Science and Engineering》 |2018年第18期|229-237|共9页
  • 作者单位

    Metallurgy and Materials Group, Indira Gandhi Centre for Atomic Research;

    Metallurgy and Materials Group, Indira Gandhi Centre for Atomic Research;

    Metallurgy and Materials Group, Indira Gandhi Centre for Atomic Research;

    Metallurgy and Materials Group, Indira Gandhi Centre for Atomic Research;

    Metallurgy and Materials Group, Indira Gandhi Centre for Atomic Research;

    Department of Mechanical Engineering, Nagaoka University of Technology;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    LCF; CF; LCF-creep-HCF; 316LN SS;

    机译:LCF;CF;LCF蠕变-HCF;316LN SS;

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