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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Application of an Industrial Sensor Coating System on a Rolls-Royce Jet Engine for Temperature Detection
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Application of an Industrial Sensor Coating System on a Rolls-Royce Jet Engine for Temperature Detection

机译:工业传感器涂层系统在劳斯莱斯喷气发动机温度检测中的应用

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摘要

Thermal barrier coatings are used to reduce the actual working temperature of the high pressure turbine blade metal surface and; hence permit the engine to operate at higher more efficient temperatures. Sensor coatings are an adaptation of existing thermal barrier coatings to enhance their functionality, such that they not only protect engine components from the high temperature gas, but can also measure the material temperature accurately and determine the health of the coating e.g., ageing, erosion and corrosion. The sensing capability is introduced by embedding optically active materials into the thermal barrier coatings and by illuminating these coatings with excitation light phosphorescence can be observed. The phosphorescence carries temperature and structural information about the coating. Accurate temperature measurements in the engine hot section would eliminate some of the conservative margins which currently need to be imposed to permit safe operation. A 50 K underestimation at high operating temperatures can lead to significant premature failure of the protective coating and loss of integrity. Knowledge of the exact temperature could enable the adaptation of the most efficient coating strategies using the minimum amount of air. The integration of an on-line temperature detection system would enable the full potential of thermal barrier coatings to be realized due to improved accuracy in temperature measurement and early warning of degradation. This, in turn, will increase fuel efficiency and reduce CO_2 emissions. Application: This paper describes the implementation of a sensor coating system on a Rolls-Royce jet engine. The system consists of three components: industrially manufactured robust coatings, advanced remote detection optics and improved control and readout software. The majority of coatings were based on yttria stabilized zirconia doped with Dy (dysprosium) and Eu (europium), although other coatings made of yttrium aluminum garnet were manufactured as well. Coatings were produced on a production line using atmospheric plasma spraying. Parallel tests at Didcot power station revealed survivabil-ity of specific coatings in excess of 4500 effective operating hours. It is deduced that the capability of these coatings is in the range of normal maintenance schedules of industrial gas turbines of 24,000 h or even longer. An advanced optical system was designed and manufactured permitting easy scanning of coated components and also the detection of phosphorescence on rotating turbine blades (13 k rotations per minute) at stand-off distances of up to 400 mm. Successful temperature measurements were taken from the nozzle guide vanes (hot), the combustion chamber (noisy) and the rotating turbine blades (moving) and compared with thermocouple and pyrometer installations for validation purposes.
机译:隔热涂层用于降低高压涡轮叶片金属表面的实际工作温度,以及因此可以使发动机在更高效率的温度下运行。传感器涂层是对现有热障涂层的改进,以增强其功能性,因此它们不仅可以保护发动机组件免受高温气体的侵害,还可以准确地测量材料温度并确定涂层的健康状况,例如老化,腐蚀和腐蚀。腐蚀。通过将光学活性材料嵌入隔热涂层中并通过激发光照射这些涂层,可以观察到磷光,从而引入了传感功能。磷光携带有关涂层的温度和结构信息。发动机热区中的准确温度测量将消除目前为确保安全运行而必须施加的一些保守裕度。在高工作温度下低估50 K会导致保护涂层明显过早失效和完整性丧失。了解确切的温度​​可以使用最少的空气适应最有效的涂覆策略。在线温度检测系统的集成将可提高隔热层的全部潜力,这是因为温度测量的准确性得到了提高,并且可以进行降级预警。反过来,这将提高燃油效率并减少CO_2排放。应用:本文介绍了劳斯莱斯喷气发动机上传感器涂层系统的实现。该系统由三部分组成:工业制造的坚固涂层,先进的远程检测光学系统以及改进的控制和读出软件。尽管也制造了其他由钇铝石榴石制成的涂层,但大多数涂层均基于掺有Dy(dy)和Eu(eur)的钇稳定的氧化锆。使用大气等离子体喷涂在生产线上生产涂层。在迪德科特电站的并行测试显示,特定涂层的使用寿命超过4500个有效运行小时。据推断,这些涂层的能力在24,000小时甚至更长的工业燃气轮机的正常维护计划范围内。设计和制造了一种先进的光学系统,可以轻松扫描涂覆的组件,并且还可以检测旋转的涡轮叶片上的磷光(每分钟13 k转),最远距离为400 mm。从喷嘴导流叶片(热),燃烧室(嘈杂)和旋转的涡轮叶片(运动)中成功进行了温度测量,并与热电偶和高温计安装进行了比较以进行验证。

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