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TOWARD DEVELOPING A PROBABILISTIC METHODOLOGY FOR PREDICTING HIGH-CYCLE FRETTING FATIGUE IN AERO-ENGINES

机译:致力于发展一种预测航空发动机高周动疲劳的概率方法

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This paper reports the results of an investigation focused on identifying the necessary steps required to develop a probabilistic fracture mechanics-based methodology for treating high-cycle fretting fatigue in military engine disks. The current methodology based on finite-element method (FEM) modeling, analytical contact stress analysis, and probabilistic fracture mechanics for analyzing low-cycle fretting fatigue is highlighted first. Incorporation of high-frequency vibratory stress cycles into a composite mission profile containing mostly low-cycle stresses requires the use of the Campbell diagram and the need to identify the mode shape, frequency, and forcing function for blade excitation induced by stator wake, flutter or rotating stall. Forced response computation methods for addressing these phenomena in the literature are reviewed to assess their applicability for integration with a contact stress analysis and a probabilistic fracture mechanics life-prediction code. This overview identifies (1) a promising path for combining vibratory stress computation, FEM structural modeling, contact stress analysis, and probabilistic fracture mechanics for treating high-cycle fretting fatigue at the attachment region of engine disks, and (2) a new approach for treating high-cycle fretting fatigue due to vibratory stresses separately from low-cycle fretting fatigue at various positions of a fan-speed profile.
机译:本文报告了一项调查结果,该调查的重点是确定必要的步骤,以开发基于概率断裂力学的方法来处理军用发动机盘中的高周期微动疲劳。首先重点介绍了当前基于有限元方法(FEM)建模,分析接触应力分析和概率断裂力学的低周期微动疲劳分析方法。将高频振动应力循环合并到主要包含低周期应力的复合任务配置文件中,需要使用坎贝尔图,并且需要确定模式形状,频率和由定子唤醒,颤动或振颤引起的叶片激励的强迫函数。旋转失速。文献中针对这些现象的强制响应计算方法进行了综述,以评估其与接触应力分析和概率断裂力学寿命预测代码集成的适用性。本概述确定了(1)将振动应力计算,FEM结构建模,接触应力分析和概率断裂力学相结合以治疗发动机圆盘附接区域的高周动微动疲劳的一种有前途的途径,以及(2)一种新的方法在风扇转速曲线的各个位置分别处理由振动应力引起的高循环微动疲劳和低循环微动疲劳。

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