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Investigation of Thermal High Cycle and Low Cycle Fatigue Mechanisms of Thick Thermal Barrier Coatings

机译:厚热障涂层热高循环和低循环疲劳机理的研究

摘要

Thick thermal barrier coating systems in a diesel engine experience severe thermal low cycle fatigue (LCF) and high cycle fatigue (HCF) during engine operation. In this paper, the mechanisms of fatigue crack initiation and propagation in a ZrO2-8wt.% Y2O3 thermal barrier coating, under simulated engine thermal LCF and HCF conditions, are investigated using a high power CO2 laser. Experiments showed that the combined LCF/HCF tests induced more severe coating surface cracking, microspallation and accelerated crack growth, as compared to the pure LCF test. Lateral crack branching and the ceramic/bond coat interface delaminations were also facilitated by HCF thermal loads, even in the absence of severe interfacial oxidation. Fatigue damages at crack wake surfaces, due to such phenomena as asperity/debris contact induced cracking and splat pull-out bending during cycling, were observed especially for the combined LCF/HCF tests. It is found that the failure associated with LCF is closely related to coating sintering and creep at high temperatures, which induce tensile stresses in the coating after cooling. The failure associated with HCF process, however, is mainly associated with a surface wedging mechanism. The interaction between the LCF, HCF and ceramic coating creep, and the relative importance of LCF and HCF in crack propagation are also discussed based on the experimental evidence.
机译:柴油发动机中的厚隔热涂层系统在发动机运行期间会遭受严重的热低循环疲劳(LCF)和高循环疲劳(HCF)。在本文中,使用大功率CO2激光器研究了在模拟发动机热LCF和HCF条件下ZrO2-8wt。%Y2O3热障涂层中疲劳裂纹萌生和扩展的机理。实验表明,与纯LCF测试相比,LCF / HCF组合测试引起更严重的涂层表面开裂,微剥落和裂纹扩展加速。即使在没有严重的界面氧化的情况下,HCF的热负荷也可以促进横向裂纹的分支和陶瓷/粘结层界面的分层。尤其是在LCF / HCF组合测试中,观察到由于粗糙/碎屑接触引起的开裂和循环中的板片拉出弯曲等现象,裂纹后表面的疲劳损伤。已经发现,与LCF有关的破坏与高温下的涂层烧结和蠕变密切相关,后者在冷却后在涂层中引起拉伸应力。但是,与HCF工艺相关的失败主要与表面楔入机制有关。基于实验证据,还讨论了LCF,HCF和陶瓷涂层蠕变之间的相互作用,以及LCF和HCF在裂纹扩展中的相对重要性。

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