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Furnace Cyclic Oxidation Behavior of Multi-Component Low Conductivity Thermal Barrier Coatings

机译:多组分低电导率热障涂层的炉循环氧化行为

摘要

Ceramic thermal barrier coatings will play an increasingly important role in advanced gas turbine engines because of their ability to further increase engine operating temperatures and reduce cooling, thus helping achieve future engine low emission, high efficiency and improved reliability goals. Advanced multi-component zirconia-based thermal barrier coatings are being developed using an oxide defect clustering design approach to achieve the required coating low thermal conductivity and high temperature stability. Although the new composition coatings were not yet optimized for cyclic durability, an initial durability screening of the candidate coating materials was conducted using conventional furnace cyclic oxidation tests. In this paper, furnace cyclic oxidation behavior of plasma-sprayed zirconia-based defect cluster thermal barrier coatings was investigated at 1163 C using 45 min hot cycles. The ceramic coating failure mechanisms were studied using scanning electron microscopy (SEM) combined with X-ray diffraction (XRD) phase analysis after the furnace tests. The coating cyclic lifetime is also discussed in relation to coating processing, phase structures, dopant concentration, and other thermo-physical properties.
机译:陶瓷隔热涂层将在先进的燃气涡轮发动机中发挥越来越重要的作用,因为它们能够进一步提高发动机工作温度并减少冷却,从而有助于实现未来发动机低排放,高效率和提高可靠性的目标。先进的基于氧化锆的多组分热障涂层正在使用氧化物缺陷簇设计方法来开发,以实现所需的低导热率和高温稳定性的涂层。尽管新的组合物涂料尚未针对循环耐久性进行优化,但使用常规的炉式循环氧化试验对候选涂料进行了初步的耐久性筛选。本文研究了等离子喷涂氧化锆基缺陷簇热障涂层的炉循环氧化行为,在1163 C下使用45分钟的热循环。炉试验后,使用扫描电子显微镜(SEM)结合X射线衍射(XRD)相分析研究了陶瓷涂层的失效机理。还讨论了与涂层处理,相结构,掺杂剂浓度和其他热物理性质有关的涂层循环寿命。

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