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Dielectrically-Loaded Cylindrical Resonator-Based Wireless Passive High-Temperature Sensor

机译:基于介电加载的圆柱谐振器的无线无源高温传感器

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摘要

The temperature sensor presented in this paper is based on a microwave dielectric resonator, which uses alumina ceramic as a substrate to survive in harsh environments. The resonant frequency of the resonator is determined by the relative permittivity of the alumina ceramic, which monotonically changes with temperature. A rectangular aperture etched on the surface of the resonator works as both an incentive and a coupling device. A broadband slot antenna fed by a coplanar waveguide is utilized as an interrogation antenna to wirelessly detect the sensor signal using a radio-frequency backscattering technique. Theoretical analysis, software simulation, and experiments verified the feasibility of this temperature-sensing system. The sensor was tested in a metal-enclosed environment, which severely interferes with the extraction of the sensor signal. Therefore, frequency-domain compensation was introduced to filter the background noise and improve the signal-to-noise ratio of the sensor signal. The extracted peak frequency was found to monotonically shift from 2.441 to 2.291 GHz when the temperature was varied from 27 to 800 °C, leading to an average absolute sensitivity of 0.19 MHz/°C.
机译:本文介绍的温度传感器基于微波介电共振器,该共振器使用氧化铝陶瓷作为基底,可以在恶劣的环境中生存。谐振器的谐振频率由氧化铝陶瓷的相对介电常数确定,该介电常数随温度单调变化。刻在谐振器表面的矩形孔既用作激励装置,又用作耦合装置。由共面波导馈电的宽带缝隙天线被用作询问天线,以使用射频反向散射技术无线检测传感器信号。理论分析,软件仿真和实验验证了该温度传感系统的可行性。在金属封闭的环境中对传感器进行了测试,该环境严重干扰了传感器信号的提取。因此,引入了频域补偿以滤除背景噪声并提高传感器信号的信噪比。当温度从27变为800°C时,提取的峰值频率从2.441 GHz变为2.291 GHz,导致平均绝对灵敏度为0.19 MHz /°C。

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