传热传质

Overall Thermal Performances of Double-Wall Effusion Cooling Covered by Simulated Thermal Barrier Coatings

  • PU Jian ,
  • ZHANG Tiao ,
  • HUANG Xin ,
  • WANG Jianhua ,
  • WU Weilong
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  • 1. CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Thermal Science and Energy Engineering, University of Science and Technology of China, Hefei 230027, China
    2. Shenyang Aero-engine Institute of Aero Engine Corporation of China, Shenyang 110015, China

网络出版日期: 2023-11-30

基金资助

The project is supported by Shenyang Aero-engine Institute of Aero Engine Corporation of China, Anhui Provincial Natural Science Foundation (contract No. 2108085ME176) and the Natural Science Foundation of China (contract No. 51506191).

版权

Science Press, Institute of Engineering Thermophysics, CAS and Springer-Verlag GmbH Germany, part of Springer Nature 2022

Overall Thermal Performances of Double-Wall Effusion Cooling Covered by Simulated Thermal Barrier Coatings

  • PU Jian ,
  • ZHANG Tiao ,
  • HUANG Xin ,
  • WANG Jianhua ,
  • WU Weilong
Expand
  • 1. CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Thermal Science and Energy Engineering, University of Science and Technology of China, Hefei 230027, China
    2. Shenyang Aero-engine Institute of Aero Engine Corporation of China, Shenyang 110015, China

Online published: 2023-11-30

Supported by

The project is supported by Shenyang Aero-engine Institute of Aero Engine Corporation of China, Anhui Provincial Natural Science Foundation (contract No. 2108085ME176) and the Natural Science Foundation of China (contract No. 51506191).

Copyright

Science Press, Institute of Engineering Thermophysics, CAS and Springer-Verlag GmbH Germany, part of Springer Nature 2022

摘要

双层壁冷却耦合表面热障涂层是先进燃气轮机热端部件最高效的热防护方式之一,但目前依旧缺乏相应的设计准则。为实现此目标,本文详细探讨了涂层厚度、冲击布局和冷气流量对隔热/冷却耦合体系综合气热性能的影响。系统综合冷却效率的测量通过匹配材料热侧毕渥数和冷热气流温度比来实现,并利用耦合传热数值模拟提供实验中未展示的部分重要气热信息。结果显示:涂层喷涂对金属降温的贡献远大于单纯地增加冷却流量。越厚的涂层甚至可以提供更强的绝热保护,但也会增加涂层自身的热破坏风险。涂层的利益会随着冷气流量的增加而不断扩大,但此趋势会因涂层增厚而被抑制。在主流横掠下,等厚涂层并不能导致均匀的金属温度分布,但其可以通过适当调节背侧冲击来解决。内部冲击的变化并不能改变综合效率与涂层厚度之间的关系。

本文引用格式

PU Jian , ZHANG Tiao , HUANG Xin , WANG Jianhua , WU Weilong . Overall Thermal Performances of Double-Wall Effusion Cooling Covered by Simulated Thermal Barrier Coatings[J]. 热科学学报, 2022 , 31(1) : 224 -238 . DOI: 10.1007/s11630-022-1561-5

Abstract

A coupling configuration of double-wall cooling and exterior surface thermal barrier coating (TBC) is one of the most promising thermal protection methods of hot components of modern gas turbine. The combined influences of coating thickness, impingement layout, and cooling air flowrate on the overall thermal performances of such configuration were discussed deeply, to provide the valuable guidance of design. Overall effectiveness measurements were implemented under engine-matched Biot numbers and mainstream-to-coolant temperature ratio. Conjugate heat transfer simulations provided the additional information difficult to be acquired by the measurements. The results indicated that the contribution of TBC is much larger than that of increasing the cooling air amount. The thicker TBC can produce the stronger insulation, while the higher risk of thermal damage of itself. The larger coolant flowrate enlarges the benefit of TBC, while the trend is suppressed by the thick TBC. The constant coating thickness cannot bring to the uniform metal temperature, which can be solved through properly adjusting the backside impingement. The trends in overall effectiveness with TBC’s thickness are independent on the change of internal impingement.

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