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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Sensor Thermal Barrier Coatings: Remote In Situ Condition Monitoring of EB-PVD Coatings at Elevated Temperatures
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Sensor Thermal Barrier Coatings: Remote In Situ Condition Monitoring of EB-PVD Coatings at Elevated Temperatures

机译:传感器热障涂层:高温下EB-PVD涂层的远程原位状态监测

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Thermal barrier coatings (TBCs) are used to reduce the actual working temperature of the high pressure turbine blade metal surface. Knowing the temperature of the surface of the TBC and at the interface between the bondcoat and the thermally grown oxide (TGO) under realistic conditions is highly desirable. As the major life-controlling factors for TBC systems are thermally activated, therefore linked with temperature, this would provide useful data for a better understanding of these phenomena and to assess the remaining lifetime of the TBC. This knowledge could also enable the design of advanced cooling strategies in the most efficient way using minimum amount of air. The integration of an on-line temperature detection system would enable the full potential of TBCs to be realized due to improved precision in temperature measurement and early warning of degradation. This, in turn, will increase fuel efficiency and reduce CO_2 emissions. The concept of a thermal-sensing TBC was first introduced by Choy, Feist, and Heyes (1998, "Thermal Barrier Coating With Thermoluminescent Indicator Material Embedded Therein," U.S. Patent U.S. 6974641 (B1)). The TBC is locally modified so it acts as a thermographic phosphor. Phosphors are an innovative way of remotely measuring temperatures and also other physical properties at different depths in the coating using photo stimulated phosphorescence (Allison and Gillies, 1997, "Remote Thermometry With Thermographic Phosphors: Instrumentation and Applications," Rev. Sci. Instrum., 68(7), pp. 2615-2650). In this study the temperature dependence of several rare earth doped EB-PVD coatings will be compared. Details of the measurements, the influence of aging, the composition, and the fabrication of the sensing TBC will be discussed in this paper. The coatings proved to be stable and have shown excellent luminescence properties. Temperature detection at ultrahigh temperatures above 1300℃ is presented using new types of EB-PVD TBC ceramic compositions. Multilayer sensing TBCs will be presented, which enable the detection of temperatures below and on the surface of the TBC simultaneously.
机译:隔热涂层(TBC)用于降低高压涡轮叶片金属表面的实际工作温度。非常需要在实际条件下知道TBC表面以及粘结涂层和热生长氧化物(TGO)之间的界面的温度。由于TBC系统的主要寿命控制因素是热激活的,因此与温度有关,这将为更好地理解这些现象并评估TBC的剩余寿命提供有用的数据。这些知识还可以使用最少的空气以最有效的方式设计高级冷却策略。在线温度检测系统的集成将由于提高了温度测量的精度和退化的预警功能而使TBC的全部潜力得以实现。反过来,这将提高燃油效率并减少CO_2排放。 Choy,Feist和Heyes首次提出了热敏TBC的概念(1998年,“嵌有热致发光指示剂的热障涂层”,美国专利,美国专利6974641(B1))。 TBC是局部改性的,因此可以用作热成像荧光粉。磷光体是一种创新的方式,可以使用光激发磷光来远程测量涂层不同深度的温度以及其他物理性质(Allison和Gillies,1997年,“用热成像磷光体进行远程测温:仪器和应用”,Rev。Sci。Instrum。, 68(7),第2615-2650页)。在这项研究中,将比较几种稀土掺杂的EB-PVD涂层的温度依赖性。本文将讨论测量的详细信息,老化的影响,TBC的组成和制造。事实证明该涂层是稳定的,并具有出色的发光性能。提出了使用新型EB-PVD TBC陶瓷组合物在1300℃以上的超高温下进行温度检测的方法。将会介绍多层传感TBC,它可以同时检测TBC下方和表面的温度。

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