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Durability of Gadolinium Zirconate/YSZ Double-Layered Thermal Barrier Coatings under Different Thermal Cyclic Test Conditions

机译:不同热环循环试验条件下的钆锆酸盐/ YSZ双层热阻挡涂层的耐久性

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摘要

Higher durability in thermal barrier coatings (TBCs) is constantly sought to enhance the service life of gas turbine engine components such as blades and vanes. In this study, three double layered gadolinium zirconate (GZ)-on-yttria stabilized zirconia (YSZ) TBC variants with varying individual layer thickness but identical total thickness produced by suspension plasma spray (SPS) process were evaluated. The objective was to investigate the role of YSZ layer thickness on the durability of GZ/YSZ double-layered TBCs under different thermal cyclic test conditions i.e., thermal cyclic fatigue (TCF) at 1100 °C and a burner rig test (BRT) at a surface temperature of 1400 °C, respectively. Microstructural characterization was performed using SEM (Scanning Electron Microscopy) and porosity content was measured using image analysis technique. Results reveal that the durability of double-layered TBCs decreased with YSZ thickness under both TCF and BRT test conditions. The TBCs were analyzed by SEM to investigate microstructural evolution as well as failure modes during TCF and BRT test conditions. It was observed that the failure modes varied with test conditions, with all the three double-layered TBC variants showing failure in the TGO (thermally grown oxide) during the TCF test and in the ceramic GZ top coat close to the GZ/YSZ interface during BRT. Furthermore, porosity analysis of the as-sprayed and TCF failed TBCs revealed differences in sintering behavior for GZ and YSZ. The findings from this work provide new insights into the mechanisms responsible for failure of SPS processed double-layered TBCs under different thermal cyclic test conditions.
机译:持续寻求热障涂层(TBC)的耐久性较高,以提高燃气涡轮发动机部件的使用寿命,例如叶片和叶片。在该研究中,评估了三种双层齐罗尼鎓锆(GZ) - 氧化钇稳定的氧化锆(YSZ)TBC变体,其具有不同的单个层厚度,但通过悬浮等离子体喷雾(SPS)工艺产生的总厚度相同的总厚度。目的是探讨YSZ层厚度对不同热循环试验条件下的GZ / YSZ双层TBC的耐久性的作用,即1100°C的热循环疲劳(TCF)和A的燃烧室钻机测试(BRT)表面温度分别为1400°C。使用SEM(扫描电子显微镜)进行微观结构表征,使用图像分析技术测量孔隙率含量。结果表明,在TCF和BRT测试条件下,双层TBC的耐久性随着YSZ厚度降低。通过SEM分析TBC,以研究TCF和BRT测试条件期间的微观结构演化以及失效模式。观察到失效模式随测试条件而变化,所有三种双层TBC变体都显示在TCF测试期间的TGO(热生长氧化物)中的失败,并且在接近GZ / YSZ接口的陶瓷GZ上层涂层中BRT。此外,喷雾和TCF的孔隙率分析失败的TBC揭示了GZ和YSZ的烧结行为的差异。这项工作的调查结果为负责在不同热循环试验条件下的SPS处理双层TBC的失败的机制提供了新的见解。

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