Key Laboratory of Micro/Nano Systems for Aerospace, Ministry of Education, Northwestern Polytechnical, University, Xi'an 710072, China.
Sensors (Basel). 2019 Mar 7;19(5):1155. doi: 10.3390/s19051155.
To solve the current problems with thin-film thermocouple signals on turbine blades in ultra-high temperature environments, this study explores the use of a through-hole lead connection technology for high-temperature resistant nickel alloys. The technique includes through-hole processing, insulation layer preparation, and filling and fixing of a high-temperature resistant conductive paste. The through-hole lead connection preparation process was optimized by investigating the influence of the inner diameter of the through-hole, solder volume, and temperature treatment on the contact strength and surface roughness of the thin-film for contact resistance. Finally, the technology was combined with a thin-film thermocouple to perform multiple thermal cycling experiments on the surface of the turbine blade at a temperature of 1000 °C. The results show that the through-hole lead connection technology can achieve a stable output of the thin-film thermocouple signal on the turbine blade.
为了解决超高温环境下涡轮叶片薄膜热电偶信号存在的问题,本研究探索了一种用于高温镍基合金的通孔引线连接技术。该技术包括通孔加工、绝缘层制备以及高温导电膏的填充和固定。通过研究通孔内径、焊料量和温度处理对薄膜接触电阻的接触强度和表面粗糙度的影响,优化了通孔引线连接的制备工艺。最后,将该技术与薄膜热电偶相结合,在 1000°C 的温度下对涡轮叶片表面进行了多次热循环实验。结果表明,通孔引线连接技术可以实现涡轮叶片上薄膜热电偶信号的稳定输出。