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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >A Fracture-Mechanics-Based Methodology for Fatigue Life Prediction of Single Crystal Nickel-Based Superalloys
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A Fracture-Mechanics-Based Methodology for Fatigue Life Prediction of Single Crystal Nickel-Based Superalloys

机译:基于断裂力学的单晶镍基高温合金疲劳寿命预测方法

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摘要

A comprehensive fracture-mechanics-based life prediction methodology is presented for fcc single crystal components based on the computation of stress intensity factors (SIFs), and the modeling of the crystallographic fatigue crack growth (FCG) process under mixed-mode loading conditions. The 3D finite element numerical procedure presented for computing SIFs for anisotropic materials under mixed-mode loading is very general and not just specific to fcc single crystals. SIFs for a Brazilian disk specimen are presented for the crack on the {111}) plane in the <101> and <121> directions, which represent the primary and secondary slip directions. Variation of SIFs as a function of thickness is also presented. Modeling of the crystallographic FCG behavior is performed by using the resolved shear stress intensity coefficient, K_(ISS). This parameter is sensitive to the grain orientation and is based on the resolved shear stresses on the slip planes at the crack tip, which is useful in identifying the active crack plane as well as in predicting the crack growth direction. A multiaxial fatigue crack driving force parameter, ΔK_(rss), was quantified, which can be used to predict the FCG rate and, hence, life in single crystal components subject to mixed-mode fatigue loading.
机译:基于应力强度因子(SIF)的计算以及混合模式载荷条件下晶体疲劳裂纹扩展(FCG)过程的建模,为FCC单晶组件提供了基于断裂力学的综合寿命预测方法。提出的用于在混合模式载荷下计算各向异性材料的SIF的3D有限元数值程序非常通用,不仅限于fcc单晶。给出了巴西圆盘样品在{111})平面上沿<101>和<121>方向的裂纹的SIF,这些方向分别表示主要和次要滑动方向。还介绍了SIF作为厚度的函数的变化。通过使用解析的剪切应力强度系数K_(ISS)进行晶体学FCG行为的建模。该参数对晶粒取向敏感,并且基于在裂纹尖端的滑动面上解析的切应力,这对于识别活动裂纹平面以及预测裂纹扩展方向很有用。量化了多轴疲劳裂纹驱动力参数ΔK_(rss),该参数可用于预测FCG速率,从而预测受混合模式疲劳载荷作用的单晶组件的寿命。

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