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Mechanism-based life model for out-of-phase thermomechanical fatigue in single crystal Ni-base superalloys

机译:基于机制的单晶镍基高温合金热机械疲劳寿命模型

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摘要

This paper describes an enhanced physics-inspired model to predict the life of the second-generation single crystal superalloy PWA 1484 experiencing out-of-phase (OP) thermomechanical fatigue (TMF). Degradation due to either pure fatigue or a coupling between fatigue and environmental attack are the primary concerns under this loading. The life model incorporates the effects of material anisotropy by utilizing the inelastic shear strain on the slip system having the highest Schmid factor while accounting for the effects of temperature-dependent slip spacing and stress-assisted y' depletion. Both conventional TMF and special bithermal fatigue (BiF) experiments were conducted to isolate and therefore better understand the interactions between these degradation mechanisms. The influences of crystallographic orientation, applied mechanical strain range, cycle maximum temperature and high temperature hold times were assessed. The resulting physics-inspired life estimation model for OP TMF and OP BiF predicts the number of cycles to crack initiation as a function of crystal orientation, applied strain amplitude and stresses, temperature, cycle time (including dwells), and surface roughness within a factor of2.
机译:本文描述了一种增强的,受物理学启发的模型,用于预测第二相单晶高温合金PWA 1484经历异相(OP)热机械疲劳(TMF)的寿命。在这种载荷下,由于纯疲劳或疲劳与环境侵蚀之间的耦合而导致的退化是主要问题。寿命模型通过利用非弹性剪切应变对具有最高Schmid因子的滑移系统合并了材料各向异性的影响,同时考虑了随温度变化的滑移间距和应力辅助y'损耗的影响。进行了常规的TMF和特殊的双热疲劳(BiF)实验,以隔离并因此更好地了解这些降解机理之间的相互作用。评估了晶体取向,施加的机械应变范围,循环最高温度和高温保持时间的影响。最终得到的基于物理灵感的OP TMF和OP BiF寿命估计模型预测了裂纹萌生的周期数,该周期是晶体取向,施加的应变幅度和应力,温度,周期时间(包括停留时间)和表面粗糙度的函数。共2。

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  • 作者单位

    George W. Woodruff School of Mechanical Engineering and Mechanical Properties Research Laboratory, Georgia Institute of Technology, 801 Ferst Dr.Atlanta, Georgia, 30332, USA;

    George W. Woodruff School of Mechanical Engineering and Mechanical Properties Research Laboratory, Georgia Institute of Technology, 801 Ferst Dr.Atlanta, Georgia, 30332, USA, School of Materials Science and Engineering, Georgia Institute of Technology, 111 Ferst Dr, Atlanta, Georgia, 30332,USA;

    George W. Woodruff School of Mechanical Engineering and Mechanical Properties Research Laboratory, Georgia Institute of Technology, 801 Ferst Dr.Atlanta, Georgia, 30332, USA, School of Materials Science and Engineering, Georgia Institute of Technology, 111 Ferst Dr, Atlanta, Georgia, 30332,USA;

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  • 正文语种 eng
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  • 关键词

    bithermal fatigue; crack initiation; life modelling; Ni-base superalloy; ther-momechanical fatigue.;

    机译:双热疲劳裂纹萌生生活建模;镍基高温合金;机械疲劳。;

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