SAW temperature sensors on LiNbO3 substrate for high voltage equipment

被引:0
作者
Karapetyan, G. Ya. [1 ]
Kaydashev, V. E. [1 ]
Kalinin, V. A. [2 ,3 ]
机构
[1] Southern Fed Univ, Lab Nanomat, Stachki 200-1, Rostov Na Donu 344090, Russia
[2] LLC VMV, Bestuzhevskya 13, St Petersburg 195271, Russia
[3] LLC SAIGIVAT, Gamsonovskii 2, Moscow 115191, Russia
关键词
SAW delay line; interdigital transducer (IDT); reader; differential transformer; lithium niobate;
D O I
10.1142/S2010135X25500110
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This paper describes a temperature sensor for high-voltage equipment. The sensor contains a delay line on surface acoustic waves, which contains narrow-band thinned-out inter-digital transducers located on the surface of the piezo substrate of the YX/128 degrees-cut lithium niobate, having a large temperature delay coefficient. The sensor is interrogated by a reader based on a differential transformer and a voltage-controlled generator (VCO). With a generator power of 10mW, it is possible to confidently interrogate the sensor at 4m. To control the temperature in a three-phase circuit, three surface acoustic waves (SAW) delay lines are used, tuned to different frequencies and one reference delay line is combined in a reader with a semiconductor temperature sensor. The temperature measurement is based on measuring the average distance between the maxima (minima) of the signal at the output of the detector reader. With this approach, cheaper analog generators can be used as VOC, rather than frequency synthesizers. The measurement accuracy is +/- 2 degrees C, and the sensitivity is 80ppm/degrees C.
引用
收藏
页数:7
相关论文
共 28 条
[11]   A novel design method for SAW temperature sensor with monotonic and linear frequency-temperature behavior in wide temperature range [J].
Li, Ling ;
Peng, Bin ;
Wang, Yi ;
Wang, Bowen ;
Huang, He ;
Zhang, Wanli ;
Zhu, Jialiang ;
Liao, Longtao .
SENSORS AND ACTUATORS A-PHYSICAL, 2020, 307
[12]   Reader Architectures for Wireless Surface Acoustic Wave Sensors [J].
Lurz, Fabian ;
Ostertag, Thomas ;
Scheiner, Benedict ;
Weigel, Robert ;
Koelpin, Alexander .
SENSORS, 2018, 18 (06)
[13]  
Lurz F, 2016, IEEE IMTC P, P369
[14]  
Morgan D., 2010, Surface Acoustic Wave Filters: With Applications to Electronic Communications and Signal Processing
[15]   WAFER-SCALE ENCAPSULATED SAW TEMPERATURE AND PRESSURE SENSORS FOR HARSH ENVIRONMENTS [J].
Ng, Eldwin J. ;
Sharma, Jaibir ;
Ching, Eva Wai Leong ;
Wu, Guoqiang ;
Pohl, Didier ;
Vancauwenberghe, Olivier .
2021 34TH IEEE INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS (MEMS 2021), 2021, :370-373
[16]  
Nikonova G. S., 2016, Radio Commun. Technol, V1, P102
[17]  
Otero MJM, 2022, INT CONF WIREL SPAC, P83, DOI [10.1109/WiSEE49342.2022.9926962, 10.1109/WISEE49342.2022.9926962]
[18]   A low-cost high-definition wireless sensor system utilizing intersymbol interference [J].
Pohl, A .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1998, 45 (05) :1355-1362
[19]   A High Sensitivity Temperature Sensor Using High-Q NS-SAW Resonator [J].
Qian, Hangyu ;
Wu, Shuxian ;
Wu, Zonglin ;
Bao, Feihong ;
Yang, Guomin ;
Zou, Jie ;
Tang, Gongbin .
2022 JOINT CONFERENCE OF THE EUROPEAN FREQUENCY AND TIME FORUM AND IEEE INTERNATIONAL FREQUENCY CONTROL SYMPOSIUM (EFTF/IFCS), 2022,
[20]   High-Temperature SAW Wireless Strain Sensor with Langasite [J].
Shu, Lin ;
Peng, Bin ;
Yang, Zhengbing ;
Wang, Rui ;
Deng, Senyang ;
Liu, Xingzhao .
SENSORS, 2015, 15 (11) :28531-28542