首页> 外文会议>ASME international mechanical engineering congress and exposition >INCORPORATING MICRO-THERMO-MECHANICAL DAMAGE MODEL IN LIFE PREDICTION ANALYSIS OF A TURBINE ENGINE BLADE TO DISK ATTACHMENT
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INCORPORATING MICRO-THERMO-MECHANICAL DAMAGE MODEL IN LIFE PREDICTION ANALYSIS OF A TURBINE ENGINE BLADE TO DISK ATTACHMENT

机译:将微型热机械损伤模型在汽轮机发动机叶片上的寿命预测分析中掺入圆盘附件

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Fretting is an important problem for the operators of turbine engines, and it occurs when the blade and disk are pressed together in contact and experience a small oscillating relative displacement due to variations in engine speed and vibratory loading. It is a significant driver of fatigue damage and failure risk of disks. The present effort focuses on the damage initiation and propagation due to fretting fatigue. It introduces a micro-thermo-mechanical damage model that is capable of capturing the micro-scale nature of the fretting small oscillatory relative displacement. The micro-scale capability of the damage model is required to capture the effect of very high local stress near the edge of contact, which results in wear, nucleation of cracks, and their growth. It also provides a high fidelity approach to capture the significant reduction in the life of the material at the blade to disk attachment. To further understand the role of damage in the fretting initiated fracture, a specially developed novel fretting crack initiation model is incorporated in the analysis. Such combination makes it possible to simulate the realistic mechanism associated with fretting. The models are incorporated in a fretting fatigue simulation of an actual blade and disk attachment configuration. The results are validated with data obtained from an actual blade and disk attachment test using a representative loading mission. The results show consistency and accuracy with experimental data.
机译:烦恼是涡轮发动机操作者的重要问题,并且当叶片和盘被压在一起时发生,并且由于发动机速度和振动载荷的变化而体验小的振荡相对位移。它是疲劳损坏和磁盘失败风险的重要推动力。目前的努力侧重于疲劳疲劳引起的损伤启动和传播。它介绍了一种微热机械损伤模型,能够捕获微尺度的微尺度性质小振荡相对位移。需要损坏模型的微尺度能力来捕获在接触边缘附近的非常高的局部应力的效果,这导致磨损,裂缝成核和它们的生长。它还提供了一种高保真方法,以捕获刀片上的材料寿命的显着降低。为了进一步了解损伤在发芽引发的骨折中的作用,在分析中纳入了专门开发的新型微裂纹裂纹启动模型。这种组合使得可以模拟与微动有关的现实机制。该模型结合在实际刀片和盘附着配置的微动疲劳模拟中。结果验证了使用代表加载任务从实际刀片和磁盘附件测试获得的数据。结果显示了实验数据的一致性和准确性。

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