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A Wireless Passive LC Resonant Sensor Based on LTCC under High-Temperature/Pressure Environments

机译:高温/高压环境下基于LTCC的无线无源LC谐振传感器

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In this work, a wireless passive LC resonant sensor based on DuPont 951 ceramic is proposed and tested in a developed high-temperature/pressure complex environment. The test results show that the measured resonant frequency varies approximately linearly with the applied pressure; simultaneously, high temperature causes pressure signal drift and changes the response sensitivity. Through the theoretical analysis of the sensor structure model, it is found that the increase in the dielectric constant and the decrease in the Young’s modulus of DuPont 951 ceramic are the main causes that affect the pressure signal in high-temperature measurement. Through calculations, the Young’s modulus of DuPont 951 ceramic is found to decrease rapidly from 120 GPa to 65 GPa within 400 °C. Therefore, the LC resonant pressure sensor needs a temperature compensation structure to eliminate the impact of temperature on pressure measurement. Finally, a temperature compensation structure is proposed and fabricated, and the pressure response after temperature compensation illustrates that temperature drift is significantly reduced compared with that without the temperature compensation structure, which verifies the feasibility the proposed temperature compensation structure.
机译:在这项工作中,提出了一种基于杜邦951陶瓷的无线无源LC谐振传感器,并在发达的高温/高压复杂环境中进行了测试。测试结果表明,测得的共振频率随所施加的压力近似线性变化。同时,高温会导致压力信号漂移并改变响应灵敏度。通过对传感器结构模型的理论分析,发现杜邦951陶瓷的介电常数的增加和杨氏模量的下降是影响高温测量中压力信号的主要原因。通过计算,发现杜邦951陶瓷的杨氏模量在400°C时从120 GPa迅速降低至65 GPa。因此,LC谐振压力传感器需要一种温度补偿结构来消除温度对压力测量的影响。最后,提出并制造了一种温度补偿结构,温度补偿后的压力响应表明,与没有温度补偿结构的温度漂移相比,温度漂移明显减小,这证明了所提出的温度补偿结构的可行性。

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