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首页> 外文期刊>Materials Science and Engineering >Low cycle fatigue of a directionally solidified nickel-based superalloy: Testing, characterisation and modelling
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Low cycle fatigue of a directionally solidified nickel-based superalloy: Testing, characterisation and modelling

机译:定向凝固镍基高温合金的低循环疲劳:测试,表征和建模

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摘要

Low cycle fatigue (LCF) of a low-carbon (LC) directionally-solidified (DS) nickel-base superalloy, CM247 LC DS, was investigated using both experimental and computational methods. Strain-controlled LCF tests were conducted at 850 ℃, with a loading direction either parallel or perpendicular to the solidification direction. Trapezoidal loading-waveforms with 2 s and 200 s dwell times imposed at the minimum and the maximum strains were adopted for the testing. A constant strain range of 2% was maintained throughout the fully-reversed loading conditions (strain ratio R = - 1). The observed fatigue life was shorter when the loading direction was perpendicular to the solidification one, indicating an anisotropic material response. It was found that the stress amplitude remained almost constant until final fracture, suggesting limited cyclic hardening/softening. Also, stress relaxation was clearly observed during the dwell period. Scanning Electron Microscopy fractographic analyses showed evidence of similar failure modes in all the specimens. To understand deformation at grain level, crystal plasticity finite element modelling was carried out based on grain textures measured with EBSD. The model simulated the full history of cyclic stress-strain responses. It was particularly revealed that the misorientations between columnar grains resulted in heterogeneous deformation and localised stress concentrations, which became more severe when the loading direction was normal to a solidification direction, explaining the shorter fatigue life observed.
机译:使用实验和计算方法研究了低碳(LC)定向凝固(DS)镍基高温合金CM247 LC DS的低循环疲劳(LCF)。在850℃下进行应变控制的LCF试验,其载荷方向平行于或垂直于凝固方向。试验采用最小和最大应变施加2 s和200 s停留时间的梯形加载波形。在完全反向的加载条件下,应变范围保持在2%不变(应变比R =-1)。当加载方向垂直于凝固方向时,观察到的疲劳寿命更短,表明材料的各向异性。发现应力幅度几乎保持恒定,直到最终断裂,这表明有限的循环硬化/软化。另外,在保压期间清楚地观察到应力松弛。扫描电子显微镜的断口分析显示所有样品的破坏模式相似。为了了解晶粒水平的形变,基于EBSD测量的晶粒织构进行了晶体可塑性有限元建模。该模型模拟了循环应力应变响应的完整历史。特别揭示出,柱状晶粒之间的取向不良导致异质形变和局部应力集中,当加载方向垂直于凝固方向时,柱状晶粒之间的不规则取向变得更加严重,这说明观察到的疲劳寿命较短。

著录项

  • 来源
    《Materials Science and Engineering》 |2017年第21期|503-513|共11页
  • 作者单位

    Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Loughborough LE11 3TU, Leicestershire, UK;

    Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Loughborough LE11 3TU, Leicestershire, UK;

    Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Loughborough LE11 3TU, Leicestershire, UK;

    School of Engineering and Sustainable Development, De Montfort University, Leicester LE1 9BH, UK;

    Institute of Structural Materials, College of Engineering, Swansea University, Swansea SA1 SEN, UK;

    Institute of Structural Materials, College of Engineering, Swansea University, Swansea SA1 SEN, UK;

    Warwick Manufacturing Group, University of Warwick, Coventry CV4 7AL, UK;

    Warwick Manufacturing Group, University of Warwick, Coventry CV4 7AL, UK;

    GE Power, Rugby, Warwickshire CV21 2NH, UK;

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

    Low cycle fatigue; Directional solidification; Crystal plasticity; Grain misorientations; Stress concentration;

    机译:低周疲劳;定向凝固;晶体可塑性;谷物方向错误;应力集中;

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