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Vapour aluminide coatings of internal cooling channels, in turbine blades and vanes

机译:内部冷却通道的汽化铝化物涂层,涡轮叶片和叶片中

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A production-scale vapour-aluminizing process has been developed that facilitates the protective aluminide coating of the surface of internal cooling channels in superalloy turbine blades and vanes, without recourse to either reduced pressure or pressure pulsing. The plant employed to apply this process industrially is briefly described. Vapour aluminide coatings thus formed on a nickel-base superalloy have been characterized in their as-coated condition. The techniques employed for this purpose comprised X-ray diffraction, Auger electron spectroscopy, optical microscopy-Nomarski differential interference contrast and bright field illumination, and microhardness testing. It has thus been determined that such aluminide coatings consist largely ofβ-NiAl and essentially have a four-zone microstructure that is discussed in some detail. This microstructure diverges markedly from those observed for commensurate coatings formed by other vapour-aluminizing processes. Two illustrative examples of the industrial application of this vapour-aluminizing process, to coat the linear internal cooling channels in a turbine blade and the serpentine channel in a vane, are presented. In' both cases, it has been established that the internal surfaces have been coated with an aluminide layer that exhibits a good uniformity of thickness throughout. The coated internal cooling channel surfaces have additionally been shown to be clean and free from any extraneous material.
机译:已经开发出了一种生产规模的蒸汽铝化工艺,该工艺可在不依靠减压或压力脉冲的情况下,促进高温合金涡轮机叶片和叶片内部冷却通道表面的保护性铝化物涂层。简要描述了用于工业应用该过程的工厂。如此在镍基高温合金上形成的汽化铝化物涂层的特征在于其涂层状态。用于此目的的技术包括X射线衍射,俄歇电子能谱,光学显微镜-诺玛斯基微分干涉对比和明场照明,以及显微硬度测试。因此已经确定,这种铝化物涂层主要由β-NiAl组成,并且基本上具有四区微结构,对此进行了详细讨论。该微观结构与通过其他蒸气铝化工艺形成的相应涂层所观察到的明显不同。给出了该气相铝化工艺的工业应用的两个说明性实例,以涂覆涡轮叶片中的线性内部冷却通道和叶片中的蛇形通道。在这两种情况下,已经确定内表面已经涂覆了铝化物层,该铝化物层始终显示出良好的厚度均匀性。涂层的内部冷却通道表面还被证明是干净的,并且没有任何多余的材料。

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