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具有高温电绝缘和高附着力的仿生结构陶瓷在K型同轴热电偶中的应用。

Application of Bioinspired Structural Ceramics with High-Temperature Electrical Insulation and High Adhesion in K-Type Coaxial Thermocouples.

作者信息

Hai Zhenyin, Chen Yue, Su Zhixuan, Wang Yemin, Gong Shigui, Zhang Yihang, Gao Shanmin, Zhang Chengfei, Wang Zhangquan, Ji Hongwei, Xue Chenyang, Liu Zhichun

机构信息

School of Aerospace Engineering, Xiamen University, Xiamen 361005, China.

School of Optoelectronics and Communications Engineering, Xiamen University of Technology, Xiamen 361005, China.

出版信息

Materials (Basel). 2025 Jun 19;18(12):2901. doi: 10.3390/ma18122901.

Abstract

Surface erosion of the coaxial thermocouple probe initiates continuous bridging of thermoelectric materials on the insulation layer surface, forming new temperature measurement junctions. This inherent ability to measure continuous self-erosion ensures the operational reliability of the coaxial thermocouples in high-temperature ablative environments. However, the fabrication of a high-temperature electrical insulation layer and a high-adhesion insulating layer in the coaxial thermocouples remains a challenge. Inspired by calcium carbonate/oxalate crystals in jujube leaves that strengthen the leaves, a bioinspired structural ceramic (BSC) mimicking these needle-like crystals is designed. This BSC demonstrates excellent high-temperature insulation (with insulation impedance of 2.55 kΩ at 1210 °C) and adhesion strength (35.3 Newtons). The BSC is successfully used as the insulating layer in a K-type coaxial thermocouple. The generation rules for surface junctions are systematically studied, revealing that stable and reliable measurement junctions can be created when the sandpaper grit does not exceed 600#. Static test results show that the K-type coaxial thermocouple ranges from 200 °C to 1200 °C with an accuracy of 1.1%, a drift rate better than 0.0137%/h, and hysteresis better than 0.81%. Dynamic test results show that the response time is 1.08 ms. The K-type coaxial thermocouple can withstand a high-temperature flame impact for 300 s at 1200 °C, as well as over forty cycles of high-power laser thermal shock, while maintaining good response characteristics. Therefore, the K-type coaxial thermocouple designed in this study provides an ideal solution for long-term temperature monitoring of the thermal components of aerospace engines under extremely high-temperature, high-speed, and strong thermal shock conditions.

摘要

同轴热电偶探头的表面侵蚀引发了热电材料在绝缘层表面的持续桥接,形成了新的温度测量结。这种测量连续自侵蚀的固有能力确保了同轴热电偶在高温烧蚀环境中的运行可靠性。然而,在同轴热电偶中制造高温电绝缘层和高附着力绝缘层仍然是一个挑战。受枣树叶中碳酸钙/草酸钙晶体增强叶片的启发,设计了一种模仿这些针状晶体的仿生结构陶瓷(BSC)。这种BSC表现出优异的高温绝缘性能(在1210°C时绝缘阻抗为2.55 kΩ)和附着力(35.3牛顿)。该BSC成功用作K型同轴热电偶的绝缘层。系统研究了表面结的生成规则,发现当砂纸粒度不超过600#时,可以创建稳定可靠的测量结。静态测试结果表明,K型同轴热电偶的温度范围为200°C至1200°C,精度为1.1%,漂移率优于0.0137%/h,滞后优于0.81%。动态测试结果表明,响应时间为1.08 ms。K型同轴热电偶在1200°C下可承受300 s的高温火焰冲击,以及四十多次高功率激光热冲击循环,同时保持良好的响应特性。因此,本研究设计的K型同轴热电偶为航空航天发动机热部件在极高温度、高速和强热冲击条件下的长期温度监测提供了理想的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/359d/12195117/63343dad6524/materials-18-02901-g001.jpg

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