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首页> 外文期刊>Surface & Coatings Technology >Microstructure and lifetime of EB-PVD TBCs with Hf-doped bond coat and Gd-zirconate ceramic top coat on CMSX-4 substrates
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Microstructure and lifetime of EB-PVD TBCs with Hf-doped bond coat and Gd-zirconate ceramic top coat on CMSX-4 substrates

机译:在CMSX-4基板上具有掺f的粘结层和锆钛酸盐陶瓷面涂层的EB-PVD TBC的微观结构和寿命

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Gadolinium zirconate (GZO) with its lower thermal conductivity and higher thermal stability compared to the industrial standard 7YSZ is a new promising material for thermal barrier coating (TBC) applications. In this study, top coats of GZO and 7YSZ were deposited on NiCoCrAIY and Hf-doped NiCoCrAlY bond coats with CMSX-4 as substrate material. The bond coats as well as the ceramic top coats were manufactured by electron beam physical vapor deposition (EB-PVD). The lifetimes of these new TBC systems were investigated by thermal cycling at 1100 degrees C. In comparison to the standard 7YSZ TBC, GZO deposited on the NiCoCrAlY bond coat exhibited a significantly enhanced lifetime. Doping NiCoCrAIY with 0.6 wt.% Hf resulted in around 10 times increase in the lifetime for the 7YSZ top coat. However, no significant difference in lifetimes was observed when 7YSZ is replaced by GZO on NiCoCrAlY-Hf bond coats. During thermal cycling, a chemical reaction between GZO and the thermally grown oxide (TGO) formed on the NiCoCrAIY bond coat was observed; however, such a chemical reaction did not occur when GZO was deposited on NiCoCrAlY-Hf bond coats. A faster TGO growth has been observed for the Hf-based systems, resulting in TGO thicknesses as large as 20 mu m. The role of Hf-doping in the bond coat, the individual TGO microstructure, and the diffusion of refractory elements from the substrate into the bond coats are discussed along with the lifetime measurements of the different TBC systems. (C) 2016 Elsevier B.V. All rights reserved.
机译:与工业标准7YSZ相比,锆d(GZO)具有较低的热导率和较高的热稳定性,是一种用于热障涂层(TBC)应用的新材料。在这项研究中,将GZO和7YSZ的面漆沉积在以CMSX-4为基材的NiCoCrAIY和掺H的NiCoCrAlY键合涂层上。通过电子束物理气相沉积(EB-PVD)来制造粘结涂层和陶瓷面涂层。通过在1100摄氏度下的热循环研究了这些新的TBC系统的寿命。与标准7YSZ TBC相比,沉积在NiCoCrAlY粘结涂层上的GZO的寿命显着延长。用0.6 wt。%的Hf掺杂NiCoCrAlY可以使7YSZ面漆的使用寿命增加约10倍。但是,当在NiCoCrAlY-Hf粘结涂层上用GZO代替7YSZ时,使用寿命没有显着差异。在热循环过程中,观察到了GZO与在NiCoCrAIY键合涂层上形成的热生长氧化物(TGO)之间的化学反应;但是,当GZO沉积在NiCoCrAlY-Hf粘结涂层上时,不会发生这种化学反应。对于基于H的系统,已经观察到TGO的增长更快,导致TGO的厚度高达20微米。讨论了Hf掺杂在粘结层,单个TGO微观结构以及难熔元素从基材到粘结层的扩散中的作用,以及不同TBC系统的寿命测量。 (C)2016 Elsevier B.V.保留所有权利。

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