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Multiaxial fatigue life prediction for powder metallurgy superalloy FGH96 based on stress gradient effect

机译:基于应力梯度效应的粉末冶金FGH96多轴疲劳寿命预测

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摘要

Both proportional and non-proportional axial-torsion fatigue tests were conducted on powder metallurgy (PM) superalloy FGH96 tubular specimens and round bar specimens at 650 °C. The alloy is widely used to manufacture the aero-engine turbine disk by a process of hot isostatic pressing (HIP). The different stress distributions of thin-walled tubular specimen and the round bar specimen under axial-torsion cyclic loading are discussed. A multiaxial equivalent stress gradient factor is defined based on the tensile stress gradient and the shear stress gradient. A modified Zhong-Wang-Wei (ZWW) model considering the effect of the stress gradient is proposed for multiaxial fatigue of FGH96. Comparing to six multiaxial fatigue models, including the maximum effective strain model, the maximum shear strain model, the Fatemi-Socie (FS) model, the Smith-Watson-Topper (SWT) model, the Itoh model and the ZWW model, the predicted multiaxial fatigue lives of FGH96 by the modified ZWW model based on the effect of the stress gradient agreed better with the experimental results.
机译:在650 C下对粉末冶金(PM)高温合金FGH96管状试样和圆棒试样进行了比例和非比例轴向扭转疲劳试验。该合金被广泛用于通过热等静压(HIP)工艺制造航空发动机涡轮盘。讨论了薄壁管状试件和圆棒试件在轴向扭转循环荷载作用下的不同应力分布。基于拉伸应力梯度和剪切应力梯度定义多轴等效应力梯度因子。针对FGH96的多轴疲劳问题,提出了一种考虑应力梯度影响的改进的Zhong-Wang-Wei(ZWW)模型。与六个多轴疲劳模型进行比较,包括最大有效应变模型,最大剪切应变模型,Fatemi-Socie(FS)模型,Smith-Watson-Topper(SWT)模型,Itoh模型和ZWW模型,预测的基于应力梯度效应的修正ZWW模型对FGH96的多轴疲劳寿命进行了较好的拟合。

著录项

  • 来源
    《International Journal of Fatigue》 |2018年第4期|26-36|共11页
  • 作者单位

    School of Energy and Power Engineering, Beihang University,Collaborative Innovation Center for Advanced Aero-engine;

    School of Energy and Power Engineering, Beihang University,Collaborative Innovation Center for Advanced Aero-engine;

    School of Energy and Power Engineering, Beihang University,Collaborative Innovation Center for Advanced Aero-engine;

    College of Civil Engineering and Architecture, Guangxi University;

    School of Energy and Power Engineering, Beihang University,Collaborative Innovation Center for Advanced Aero-engine;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Multiaxial fatigue; Stress gradient; Powder metallurgy (PM) superalloy FGH96; Life prediction; Pi-plane;

    机译:多轴疲劳;应力梯度;粉末冶金(PM)高温合金FGH96;寿命预测;Pi平面;

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