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Pressure measurements in high-temperature applications, including compressors, turbines, and others, have become increasingly critical. This paper proposes an implantable passive LC pressure sensor based on an alumina ceramic material for in situ pressure sensing in high-temperature environments. The inductance and capacitance elements of the sensor were designed independently and separated by a thermally insulating material, which is conducive to reducing the influence of the temperature on the inductance element and improving the quality factor of the sensor. In addition, the sensor was fabricated using thick film integrated technology from high-temperature materials that ensure stable operation of the sensor in high-temperature environments. Experimental results showed that the sensor accurately monitored pressures from 0 bar to 2 bar at temperatures up to 800 °C. The sensitivity, linearity, repeatability error, and hysteretic error of the sensor were 0.225 MHz/bar, 95.3

作者:Jijun, Xiong;Chen, Li;Pinggang, Jia;Xiaoyong, Chen;Wendong, Zhang;Jun, Liu;Chenyang, Xue;Qiulin, Tan

来源:Sensors (Basel, Switzerland) 2015 年 15卷 9期

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收藏
| 浏览:31
作者:
Jijun, Xiong;Chen, Li;Pinggang, Jia;Xiaoyong, Chen;Wendong, Zhang;Jun, Liu;Chenyang, Xue;Qiulin, Tan
来源:
Sensors (Basel, Switzerland) 2015 年 15卷 9期
标签:
Alumina ceramic High-temperature application Pressure measurement passive LC pressure sensor
Pressure measurements in high-temperature applications, including compressors, turbines, and others, have become increasingly critical. This paper proposes an implantable passive LC pressure sensor based on an alumina ceramic material for in situ pressure sensing in high-temperature environments. The inductance and capacitance elements of the sensor were designed independently and separated by a thermally insulating material, which is conducive to reducing the influence of the temperature on the inductance element and improving the quality factor of the sensor. In addition, the sensor was fabricated using thick film integrated technology from high-temperature materials that ensure stable operation of the sensor in high-temperature environments. Experimental results showed that the sensor accurately monitored pressures from 0 bar to 2 bar at temperatures up to 800 °C. The sensitivity, linearity, repeatability error, and hysteretic error of the sensor were 0.225 MHz/bar, 95.3