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Thermal failure of nanostructured thermal barrier coatings with cold sprayed nanostructured NiCrAlY bond coat

机译:具有冷喷涂纳米结构NiCrAlY粘结涂层的纳米结构热障涂层的热失效

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Nanostructured YSZ is expected to exhibit a high strain tolerability due to its low Young's modulus and consequently high durability. In this study, a porous YSZ as the thermal barrier coating was deposited by plasma spraying using an agglomerated nanostructured YSZ powder on a Ni-based superalloy Inconel 738 substrate with a cold-sprayed nanostructured NiCrAlY as the bond coat. The heat treatment in Ar atmosphere was applied to the cold-sprayed bond coat before deposition of YSZ. The isothermal oxidation and thermal cycling tests were applied to examine failure modes of plasma-sprayed nanostructured YSZ. The results showed that YSZ coating was deposited by partially melted YSZ particles. The nonmelted fraction of spray particles retains the porous nanostructure of the starting powder into the deposit. YSZ coating exhibits a bimodal microstructure consisting of nanosized particles retained from the powder and micro-columnar grains formed through the solidification of the melted fraction in spray particles. The oxidation of the bond coat occurs during the heat treatment in Ar atmosphere. The uniform oxide at the interface between the bond coat and YSZ can be formed during isothermal test. The cracks were observed at the interface between TGO/BC or TGO/YSZ after thermal cyclic test. However, the failure of TBCs mainly occurred through spalling of YSZ within YSZ coating. The failure characteristics of plasma-sprayed nanostructured YSZ are discussed based on the coating microstructure and formation of TGO on the bond coat surface.
机译:纳米结构的YSZ由于其低的杨氏模量并因此具有高的耐久性,因此有望表现出高的应变耐受性。在这项研究中,通过等离子喷涂,使用团聚的纳米结构YSZ粉末在带有冷喷涂纳米结构的NiCrAlY作为粘结层的镍基高温合金Inconel 738基底上进行等离子喷涂,从而沉积了多孔YSZ作为隔热涂层。在沉积YSZ之前,在Ar气氛中对冷喷涂的粘结层进行热处理。等温氧化和热循环测试被应用于检查等离子体喷涂纳米结构YSZ的失效模式。结果表明,YSZ涂层是由部分熔融的YSZ颗粒沉积而成的。喷雾颗粒的未熔化部分将起始粉末的多孔纳米结构保留到沉积物中。 YSZ涂层具有双峰微观结构,该微观结构由粉末中保留的纳米级颗粒和通过喷雾颗粒中熔融馏分的固化形成的微柱状颗粒组成。在Ar气氛中的热处理过程中会发生粘结层的氧化。在等温测试期间,可以在粘结层和YSZ之间的界面上形成均匀的氧化物。热循环试验后,在TGO / BC或TGO / YSZ之间的界面处观察到裂纹。然而,TBC的失效主要是由于YSZ涂层中YSZ的剥落所致。基于涂层微观结构和粘结涂层表面TGO的形成,讨论了等离子喷涂纳米结构YSZ的失效特征。

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