Synchrotron X-Ray Diffraction to Quantify In-Situ Strain on Rare-Earth Doped Yttria-Stabilized Zirconia Thermal Barrier Coatings

Q. Fouliard, Johnathan Hernandez, Hossein Ebrahimi, Khanh Vo, Hossein Ebrahimi, S. Raghavan, Frank Accornero, M. Mccay, Jun-Sang Park, J. Almer
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Abstract

The recent advancement in multifunctional thermal barrier coatings (TBCs) for temperature sensing or defect monitoring has gained interest over the past decade as they have shown great potential for optimized engine operation with higher efficiency, reduced fuel consumption and maintenance costs. Specifically, sensor coatings containing luminescent ions enable materials monitoring using integrated spectral characteristics. While facilitating sensing capabilities, luminescent rare-earth dopants ideally present minimal intrusiveness for the thermal barrier coating. However, the effects of rare-earth dopant addition on thermomechanical and thermochemical properties remain unclear. Our study intends to fill this knowledge gap by characterizing coatings’ internal thermomechnical properties under realistic gas turbine engine operating temperatures. In this work, TBC configurations including industry standard coatings and sensor coatings were compared to quantify dopant intrusiveness. The TBC configurations have been characterized using high-energy synchrotron X-ray diffraction while being heated up to gas turbine engine temperatures. The TBC samples have been subjected to a single cycle thermal load with multiple ramps and holds during XRD data collection. Depth-resolved XRD was used to obtain the 2D diffraction patterns corresponding to each depth location for the determination of strain distributions along the TBCs. Internal strains and stresses acting through the coatings were quantified mostly highlighting that there is negligible variation between the standard and novel sensor coatings. Thus, the thermal response at high temperature remains unaffected with addition of luminescent dopants. This evaluation of novel coating configurations provides valuable insight for future safe implementation of these temperature sensing coatings without performance reductions.
同步加速器x射线衍射定量稀土掺杂钇稳定氧化锆热障涂层的原位应变
在过去的十年中,用于温度传感或缺陷监测的多功能热障涂层(tbc)的最新进展引起了人们的兴趣,因为它们在优化发动机运行方面显示出了巨大的潜力,可以提高效率,降低油耗和维护成本。具体来说,包含发光离子的传感器涂层使材料能够使用集成光谱特性进行监测。在促进传感能力的同时,发光稀土掺杂剂理想地为热障涂层提供最小的侵入性。然而,稀土掺杂对热力学和热化学性能的影响尚不清楚。我们的研究旨在通过表征涂层在实际燃气涡轮发动机工作温度下的内部热力学性能来填补这一知识空白。在这项工作中,比较了包括工业标准涂层和传感器涂层在内的TBC配置,以量化掺杂物的侵入性。在加热到燃气涡轮发动机温度的同时,利用高能同步加速器x射线衍射对TBC结构进行了表征。在XRD数据收集过程中,TBC样品经受了多个斜坡和保持的单循环热负荷。利用深度分辨XRD获得了每个深度位置对应的二维衍射图,从而确定了沿tbc的应变分布。通过涂层的内部应变和应力被量化,主要强调标准和新型传感器涂层之间的变化可以忽略不计。因此,在高温下的热响应不受发光掺杂剂的影响。这种新型涂层结构的评估为这些温度传感涂层在不降低性能的情况下的未来安全实施提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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