Title :
Wireless Passive Temperature Sensors Using Integrated Cylindrical Resonator/Antenna for Harsh-Environment Applications
Author :
Haitao Cheng ; Xinhua Ren ; Ebadi, Siamak ; Yaohan Chen ; Linan An ; Xun Gong
Author_Institution :
Dept. of Electr. Eng. & Comput. ScienceAntenna, Univ. of Central Florida, Orlando, FL, USA
Abstract :
Wireless passive temperature sensors for harsh-environment applications based on cylindrical microwave cavity resonators are presented herein. Slot antennas are integrated with sensors with zero additional volume. The resonant frequencies of the sensors are determined by the dielectric constants of the ceramic materials, which monotonically increase versus temperature. Silicoboron carbonitride (SiBCN) ceramic materials, which are very robust inside harsh environments featuring high temperatures and corrosive gases, are optimized in this paper to reduce dielectric losses and increase sensing ranges and accuracies. A robust interrogation antenna is developed to wirelessly measure the sensors up to 1300 °C. Two sensors based on Si6B1 and Si4B1 ceramics are measured up to 1050 °C and 1300 °C, respectively, with a sensitivity of ~0.78 MHz/°C at 1050 °C. This type of wireless, passive, and robust sensor can be used for many harsh-environment applications, such as gas turbines.
Keywords :
cavity resonators; dielectric losses; microwave resonators; permittivity; slot antennas; temperature sensors; ceramic materials; cylindrical microwave cavity resonators; dielectric constants; dielectric losses; harsh environment applications; integrated cylindrical resonator; robust interrogation antenna; slot antennas; wireless passive temperature sensors; zero additional volume; Ceramics; Dielectric constant; Resonant frequency; Slot antennas; Temperature measurement; Temperature sensors; Cavity resonators; high-temperature techniques; microwave sensors; slot antennas; temperature sensors; temperature sensors.;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2014.2363426