Wang Bo, Li Youwei, Gu Tingting, Wang Ke
School of Automation, Xi'an University of Posts and Telecommunications, Xi'an 710121, China.
Department of Smart New Energy, GuiYang Engineering Corporation Limited, Guiyang 550081, China.
Micromachines (Basel). 2023 Mar 25;14(4):731. doi: 10.3390/mi14040731.
A passive wireless sensor is designed for real-time monitoring of a high temperature environment. The sensor is composed of a double diamond split rings resonant structure and an alumina ceramic substrate with a size of 23 × 23 × 0.5 mm. The alumina ceramic substrate is selected as the temperature sensing material. The principle is that the permittivity of the alumina ceramic changes with the temperature and the resonant frequency of the sensor shifts accordingly. Its permittivity bridges the relation between the temperature and resonant frequency. Therefore, real time temperatures can be measured by monitoring the resonant frequency. The simulation results show that the designed sensor can monitor temperatures in the range 2001000 °C corresponding to a resonant frequency of 6.796.49 GHz with shifting 300 MHz and a sensitivity of 0.375 MHz/°C, and demonstrate the quasi-linear relation between resonant frequency and temperature. The sensor has the advantages of wide temperature range, good sensitivity, low cost and small size, which gives it superiority in high temperature applications.
一种无源无线传感器被设计用于高温环境的实时监测。该传感器由双菱形分裂环谐振结构和尺寸为23×23×0.5毫米的氧化铝陶瓷基板组成。氧化铝陶瓷基板被选作温度传感材料。其原理是氧化铝陶瓷的介电常数随温度变化,传感器的谐振频率也相应发生偏移。其介电常数建立了温度与谐振频率之间的关系。因此,通过监测谐振频率可以测量实时温度。仿真结果表明,所设计的传感器能够监测2001000°C范围内的温度,对应谐振频率为6.796.49GHz,偏移量为300MHz,灵敏度为0.375MHz/°C,并证明了谐振频率与温度之间的准线性关系。该传感器具有温度范围宽、灵敏度好、成本低和尺寸小的优点,这使其在高温应用中具有优势。