Hai Zhenyin, Chen Yue, Su Zhixuan, Ji Hongwei, Zhang Yihang, Gong Shigui, Gao Shanmin, Xue Chenyang, Gao Libo, Liu Zhichun
School of Aerospace Engineering, Xiamen University, Xiamen 361005, China.
Inner Mongolia Aerospace Power Machinery Testing Institute, Hohhot 010076, China.
Sensors (Basel). 2025 Aug 21;25(16):5210. doi: 10.3390/s25165210.
Aerospace engines and hypersonic vehicles, among other high-temperature components, often operate in environments characterized by temperatures exceeding 1000 °C and high-speed airflow impacts, resulting in severe thermal erosion conditions. Coaxial thermocouples (CTs), with their unique self-eroding characteristic, are particularly well suited for use in such extreme environments. However, fabricating high-temperature electrical insulation layers for coaxial thermocouples remains challenging. Inspired by the self-healing mechanism of pine trees, we designed a composite electrical insulation layer with a similar self-healing function. This composite layer exhibits excellent high-temperature insulation properties (insulation resistance of 14.5 kΩ at 1200 °C). Applied as the insulation layer in K-type coaxial thermocouples via dip-coating, the thermocouples were tested for temperature and heat flux. Temperature tests showed an accuracy of 1.72% in the range of 200-1200 °C, a drift rate better than 0.474%/h at 1200 °C, and hysteresis better than 0.246%. The temperature response time was 1.08 ms. Heat flux tests demonstrated a measurable range of 0-41.32 MW/m with an accuracy better than 6.511% and a heat flux response time of 7.6 ms. In simulated extreme environments, the K-type coaxial thermocouple withstood 70 s of 900 °C flame impact and 50 cycles of high-power laser thermal shock.
航空航天发动机和高超音速飞行器等高温部件,经常在温度超过1000°C且有高速气流冲击的环境中运行,从而导致严重的热侵蚀状况。同轴热电偶(CT)具有独特的自侵蚀特性,特别适合在这种极端环境中使用。然而,为同轴热电偶制造高温电绝缘层仍然具有挑战性。受松树自愈机制的启发,我们设计了一种具有类似自愈功能的复合电绝缘层。该复合层具有优异的高温绝缘性能(在1200°C时绝缘电阻为14.5 kΩ)。通过浸涂法将其用作K型同轴热电偶的绝缘层后,对热电偶进行了温度和热流测试。温度测试表明,在200 - 1200°C范围内精度为1.72%,在1200°C时漂移率优于0.474%/h,滞后优于0.246%。温度响应时间为1.08 ms。热流测试表明,可测量范围为0 - 41.32 MW/m,精度优于6.511%,热流响应时间为7.6 ms。在模拟极端环境中,K型同轴热电偶经受住了900°C火焰冲击70秒和高功率激光热冲击50次循环。