首页> 外文期刊>Metallurgical and Materials Transactions A >Microstructural evolution of the nickel platinum-aluminide bond coat on electron-beam physical-vapor deposition thermal-barrier coatings during high-temperature service
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Microstructural evolution of the nickel platinum-aluminide bond coat on electron-beam physical-vapor deposition thermal-barrier coatings during high-temperature service

机译:高温使用过程中电子束物理气相沉积热障涂层上镍铂铝化物粘结涂层的组织演变

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摘要

The microstructural evolution of a (Ni,Pt)-aluminide bond coat underneath the ZrO2-based thermal-barrier coating (TBC) topcoat system on a René N5 Ni-based superalloy turbine blade during prolonged high-temperature service has been characterized using transmission electron microscopy (TEM). The as-deposited bond coat has a spatially varying microstructure, which consists of an outer layer of single-phase β-(Ni,Pt)Al, a middle layer of a β-(Ni,Pt)Al matrix containing a high number density of μ-phase precipitates, and an inner layer containing a γ/γ′ matrix and numerous μ- and σ-phase precipitates. During service, microstructural changes in the hotter sections of the blade are more extensive than those in the cooler parts, as expected. As a result of interdiffusion, the inner layer grows into the γ/γ′ substrate, with the formation of some M23C6 precipitates, and the β matrix in the middle layer is transformed into a two-phase mixture of β and γ′. Corresponding changes occur in the morphologies and volume fractions of the various precipitate phases present in the bond coat. The single-phase β material in the outer layer retains its basic structure, except that the compositional changes due to diffusion between the bond coat and turbine blade cause a martensitic transformation to occur in the hottest sections during the final cooling of the blade. The distribution of various elements in the different layers has also been analyzed, as has growth of the thermally grown oxide (TGO) at the bond coat/TBC interface.
机译:在长时间高温工作期间,在RenéN5 Ni基高温合金涡轮机叶片上,基于ZrO2 基热障涂层(TBC)面漆的ZrO2 基热障涂层下的(Ni,Pt)-铝化物键合涂层的微观结构演变已被发现使用透射电子显微镜(TEM)进行表征。沉积的键合涂层具有空间变化的微观结构,该微观结构由单相β-(Ni,Pt)Al的外层,包含高数密度的β-(Ni,Pt)Al基质的中间层组成μ相沉淀,以及一个包含γ/γ'基质和大量μ相和σ相沉淀的内层。在维修过程中,叶片较热部分的显微组织变化比较冷部分的显微组织变化要广。互扩散的结果是,内层生长到γ/γ'底物中,形成一些M23 C6 沉淀,中间层的β基质转变为两相。 β和γ'的混合物。在粘结层中存在的各种沉淀相的形态和体积分数中发生相应的变化。外层中的单相β材料保持其基本结构,不同之处在于,由于粘结层和涡轮叶片之间的扩散而引起的成分变化会在叶片的最终冷却过程中在最热的区域中发生马氏体相变。还分析了不同层中各种元素的分布,以及在粘结层/ TBC界面处热生长氧化物(TGO)的生长。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2005年第1期|43-53|共11页
  • 作者

    L. C. Zhang; A. H. Heuer;

  • 作者单位

    University of Connecticut 06269-3136 Storrs CT;

    the Department of Materials Science and Engineering Case Western Reserve University 44106-7204 Cleveland OH;

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  • 正文语种 eng
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