首页> 外文会议>26th Annual Conference on Composites, Advanced Ceramics, Materials, and Structures: B Jan 13-18, 2002 Cocoa Beach, Florida >FURNACE CYCLIC BEHAVIOR OF PLASMA-SPRAYED ZIRCONIA-YTTRIA AND MULTI-COMPONENT RARE EARTH OXIDE DOPED THERMAL BARRIER COATINGS
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FURNACE CYCLIC BEHAVIOR OF PLASMA-SPRAYED ZIRCONIA-YTTRIA AND MULTI-COMPONENT RARE EARTH OXIDE DOPED THERMAL BARRIER COATINGS

机译:等离子体喷涂氧化锆-氧化锆和多组分稀土氧化物掺杂的热障涂层的炉循环性能

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摘要

Ceramic thermal barrier coatings will play an increasingly important role in advanced gas turbine engines because of their ability to enable further increases in engine temperatures. However, the coating performance and durability become a major concern under the increasingly harsh thermal cycling conditions. Advanced zirconia- and hafnia-based cluster oxide thermal barrier coatings ― having lower thermal conductivity and improved thermal stability ― are being developed using a high-heat-flux laser-rig based test approach. Although the new composition coatings were not yet optimized for cyclic durability, an initial durability screening of numerous candidate coating materials was carried out using conventional furnace cyclic tests. In this paper, furnace thermal cyclic behavior of the advanced plasma-sprayed zirconia-yttria-based thermal barrier coatings that were co-doped with multi-component rare earth oxides was investigated at 1163℃ using 45 min hot cycles. The ceramic coating failure mechanisms were studied by using scanning electron microscopy combined with X-ray diffraction phase analysis after the furnace tests. The coating cyclic lifetime will be discussed in relation to coating phase structures, total dopant concentrations and other properties.
机译:陶瓷隔热涂层在先进的燃气涡轮发动机中将发挥越来越重要的作用,因为它们能够进一步提高发动机温度。然而,在日益苛刻的热循环条件下,涂层性能和耐久性成为主要问题。先进的基于氧化锆和氧化f的团簇氧化物热障涂层-具有较低的导热率和更高的热稳定性-正在使用基于高热通量激光装置的测试方法进行开发。尽管尚未针对循环耐久性对新的成分涂层进行优化,但使用常规的熔炉循环测试对众多候选涂料进行了初步的耐久性筛选。本文研究了先进的等离子喷涂氧化锆-氧化钇基热障涂层与多组分稀土氧化物共掺杂的热循环性能,在1163℃下使用45分钟的热循环。炉试验后,通过扫描电子显微镜结合X射线衍射相分析研究了陶瓷涂层的破坏机理。将针对涂层的相结构,总掺杂剂浓度和其他性质来讨论涂层的循环寿命。

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