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Hybrid contact stress analysis of a turbine engine blade to disk attachment

机译:涡轮发动机叶片到磁盘附件的混合接触应力分析

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摘要

The present investigation examines an analysis methodology for fretting fatigue in a turbine engine fan disk. This is an important problem for the operators of turbine engines, since it is a significant driver of fatigue damage and failure risk of disks. Fretting fatigue in turbine engines occurs when the blade and disk are pressed together in contact and experience a small oscillating relative displacement due to vari ations in engine speed and vibratory loading. Fretting causes a very high local stress near the edge of con tact resulting in wear, nucleation of cracks, and their growth, which can result in significant reduction in the life of the material. It is dependent on geometry, loading conditions, residual stresses, and surface roughness, among other factors. These complexities are not just physically based, but also computation ally challenging. For example, the determination of the local contact stresses accurately depends on the mesh resolution of the finite element method (FEM) model. This has been addressed using various approaches. Recently, a computational hybrid technique was implemented successfully to investigate fretting fatigue of turbine engine blade and disk attachments. The present work extends application to specifically investigate the effects of surface contact in an actual blade and disk assembly using a repre sentative loading mission. The results show consistency with available experimental data. Finally, the knowledge gained from this investigation could be used as a basis for uncertainty analyses of an actual blade and disk assembly.
机译:本研究调查了一种用于分析涡轮发动机风扇盘中疲劳的分析方法。对于涡轮发动机的操作者来说,这是一个重要的问题,因为它是疲劳损坏和磁盘故障风险的重要驱动因素。涡轮发动机的微动疲劳是由于叶片速度和振动负载的变化而使叶片和圆盘接触在一起并发生较小的相对振动位移而引起的。微动在接触边缘附近引起很高的局部应力,从而导致磨损,裂纹成核及其增长,这可能导致材料寿命的显着减少。它取决于几何形状,负载条件,残余应力和表面粗糙度等因素。这些复杂性不仅基于物理,而且具有计算上的挑战性。例如,局部接触应力的确定准确地取决于有限元方法(FEM)模型的网格分辨率。已经使用各种方法解决了这一问题。最近,成功地采用了一种计算混合技术来研究涡轮发动机叶片和盘附件的微动疲劳。本工作扩展了应用程序,专门研究了具有代表性的加载任务,在实际的刀片和磁盘组件中表面接触的影响。结果表明与可用的实验数据一致。最后,从这次调查中获得的知识可以用作对实际刀片和磁盘组件进行不确定性分析的基础。

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