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首页> 外文期刊>Surface & Coatings Technology >Influence of yttria on the cyclic lifetime of YSZ TBC deposited on EB-PVD NiCoCrAlY bondcoats and its contribution to a modified TBC adhesion mechanism
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Influence of yttria on the cyclic lifetime of YSZ TBC deposited on EB-PVD NiCoCrAlY bondcoats and its contribution to a modified TBC adhesion mechanism

机译:氧化钇对沉积在EB-PVD NiCoCrAlY粘合剂涂层上的YSZ TBC循环寿命的影响及其对改进的TBC粘附机理的贡献

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In the present study IN100 substrates have been coated with a 100 μm NiCoCrAlY bondcoat (BC) by electron beam physical vapor deposition (EB-PVD). Prior to thermal barrier coating (TBC) deposition the bondcoats have been annealed in vacuum applying various annealing temperatures and durations in order to form a thermally grown oxide (TGO). Subsequently, a 175 μm yttria partially stabilized zirconia (YSZ) TBC has been deposited by EB-PVD. Scanning electron microscopy (SEM) and scanning transmission electron microscopy (STEM) have been used to investigate TGO microstructure and morphology on as coated NiCoCrAlY bondcoats after TBC deposition. Furthermore, the TGO growth during the early stages of TBC deposition has been correlated with TBC thermal cyclic lifetime. STEM investigations reveal the nucleation of an outer yttria TGO layer during different bondcoat pre-treatments that was located between alumina and ceramic topcoat after TBC deposition. The amount of yttria formed as an outer TGO layer increases with annealing temperature and annealing duration. The growth of this yttria layer has been correlated with TBC lifetime. The current results reveal that longer cyclic TBC lifetimes have been observed on those specimens that form a significant quantity of yttria at the TGO outer surface prior to TBC deposition. When disregarding further oxidation during pre-heating of the samples right prior to TBC deposition it is getting obvious that the ceramic topcoat mainly binds to yttria and not to alumina in the initial stages of TBC deposition. It is assumed that the yttria layer acts as a bi-functional primer promoting a) the formation of a chemical compounds such as YAG and YAP between alumina and yttria and additionally b) towards TBC the formation of solid solutions between yttria and YSZ that are indicated by interdiffusion curves. Within a chemical approach a modified TBC adhesion mechanism has been assessed implementing a compound alumina-yttria TGO into the current understanding of TBC adhesion.
机译:在本研究中,已经通过电子束物理气相沉积(EB-PVD)在IN100基底上涂覆了100μmNiCoCrAlY粘结涂层(BC)。在沉积热障涂层(TBC)之前,已在真空中应用各种退火温度和持续时间对粘结层进行退火,以形成热生长氧化物(TGO)。随后,通过EB-PVD沉积了175μm的氧化钇部分稳定的氧化锆(YSZ)TBC。扫描电子显微镜(SEM)和扫描透射电子显微镜(STEM)已用于研究TBC沉积后作为涂覆NiCoCrAlY粘结涂层的TGO的组织和形态。此外,TBC沉积早期的TGO生长与TBC热循环寿命相关。 STEM研究表明,在TBC沉积后,位​​于氧化铝和陶瓷面漆之间的不同粘结涂层预处理期间,氧化钇TGO外层的形核。形成为外部TGO层的氧化钇的数量随退火温度和退火持续时间的增加而增加。该氧化钇层的生长与TBC寿命相关。目前的结果表明,在TBC沉积之前,在TGO外表面形成大量氧化钇的那些样品上,观察到更长的循环TBC寿命。当不考虑在TBC沉积之前的样品预热过程中的进一步氧化时,很明显的是,陶瓷涂层在TBC沉积的初始阶段主要与氧化钇结合,而不与氧化铝结合。假定氧化钇层起双功能底漆的作用,促进a)在氧化铝和氧化钇之间形成诸如YAG和YAP的化学化合物,另外b)朝向TBC在氧化钇和YSZ之间形成固溶体通过相互扩散曲线。在化学方法中,已经对将复合氧化铝-氧化钇TGO应用于目前对TBC粘附的理解中,评估了改进的TBC粘附机制。

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