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Microstructural Characterization of a Platinum-Modified Diffusion Aluminide Bond Coat for Thermal Barrier Coatings

机译:用于热障涂层的铂改性扩散铝化物键合涂层的微观结构表征

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摘要

Microstructural and chemical evolution induced by thermal cycling of a platinum-modified diffusion aluminide bond coat was investigated with transmission electron microscopy (TEM), X-ray diffraction, (XRD) and electron microprobe analysis. As-fabricated, the bond coat was confirmed to be an ordered B2 structure, but the underlying microstructure was found to be modulated. Thermal cycling resulted in a primarily outward diffusion of Ni and the formation of a Ni-rich bond coat containing secondary L1_2 precipitates. Closer inspection of the bond coat revealed a transformation from its original B2 structure to a L1_0 martensite. In-situ TEM observations indicated that the martensite is stable at lower temperatures and that the parent B2 structure reappears at higher temperatures. These observations can be used to explain the variations in strength that have recently been measured in thermally cycled bond coats. The resulting transformation strain is also argued to play an important role in determining the accumulation of stress and strain in thermally cycled thermal barrier coatings (TBCs).
机译:通过透射电子显微镜(TEM),X射线衍射(XRD)和电子显微探针分析研究了铂修饰的扩散铝化物键合涂层热循环引起的微观结构和化学演化。刚制造时,粘结涂层被证实是有序的B2结构,但发现其下面的微观结构受到了调节。热循环导致Ni主要向外扩散,并形成含有次生L1_2沉淀物的富Ni键合涂层。仔细检查粘结层后发现,它从原来的B2结构转变为L1_0马氏体。原位TEM观察表明,马氏体在较低温度下是稳定的,而母体B2结构在较高温度下会重新出现。这些观察结果可用于解释最近在热循环粘结层中测得的强度变化。据认为,所产生的相变应变在确定热循环热障涂层(TBC)中的应力和应变累积中也起着重要作用。

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