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Development of Advanced Low Conductivity Thermal Barrier Coatings

机译:先进的低电导率热障涂层的开发

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摘要

Advanced multi-component, low conductivity oxide thermal barrier coatings have been developed using an approach that emphasizes real-time monitoring of thermal conductivity under conditions that are engine-like in terms of temperatures and heat fluxes. This is in contrast to the traditional approach where coatings are initially optimized in terms of furnace and burner rig durability with subsequent measurement in the as-processed or furnace-sintered condition. The present work establishes a laser high-heat-flux test as the basis for evaluating advanced plasma-sprayed and electron beam-physical vapor deposited (EB-PVD) thermal barrier coatings under the NASA Ultra-Efficient Engine Technology (UEET) Program. The candidate coating materials for this program are novel thermal barrier coatings that are found to have significantly reduced thermal conductivities and improved thermal stability due to an oxide-defect-cluster design. Critical issues for designing advanced low conductivity coatings with improved coating durability are also discussed.
机译:已开发出一种先进的多组分,低电导率氧化物热障涂层,该方法强调在像发动机一样的温度和热通量条件下实时监控热导率。这与传统方法形成对比,传统方法是首先根据熔炉和燃烧机的耐用性对涂层进行优化,然后在加工后或熔炉烧结的条件下进行测量。本工作建立了激光高通量测试,以此作为根据NASA超高效发动机技术(UEET)计划评估先进的等离子喷涂和电子束物理气相沉积(EB-PVD)热障涂层的基础。该程序的候选涂层材料是新型的热障涂层,这些涂层由于氧化物缺陷簇设计而具有明显降低的热导率和改善的热稳定性。还讨论了设计具有改善的涂层耐久性的高级低电导率涂层的关键问题。

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