Design, Development and Testing of Quartz Tuning Fork Temperature Sensor

2011 ◽  
Vol 483 ◽  
pp. 143-147
Author(s):  
Jing Ma ◽  
Jun Xu ◽  
Bo You

In this paper, a low cost quartz tuning fork temperature sensor adopting H-shaped tuning fork resonator to address miniaturization, high resolution and high stability has been designed, developed and tested. The quartz tuning temperature sensor is designed vibrating in flexural mode with a new thermo-sensitive cut. The quartz tuning fork temperature sensor consists of two prongs connected at one end of crystalline quartz plate with thin-film metal electrodes deposited on the faces, which is used to produce vibration in response to alternating voltages and detecting the resonance frequency in the meantime. When an external temperature is change, there is a shift in its natural frequency. Based on this principle, a resonant thermometer is designed. Finite element method is used to analyze the vibratory modes and optimize the structure. The whole structure is 500μm thickness, the length of tuning fork arm is 3076μm and the width of tuning fork arm is 600um, the frequency of tuning fork is about 37kHz with a sensitivity of rough 85 ppm/°C. The experimental results shown that a temperature accuracy of 0.01 °C and a resolution of 0.005 °C within temperature range from 0 °C to 100 °C. All these research are helpful to design satisfactory performance of the sensor for temperature measurement.

2014 ◽  
Vol 530-531 ◽  
pp. 79-82
Author(s):  
Chang Fu Li ◽  
Jing Ma ◽  
Fang He

This paper presents the design, fabrication and characterization of quartz tuning fork temperature sensor which is based on new ZY-cut-quartz crystal bulk acoustic wave resonator vibrating in a flexural mode. Design and performance analysis of the quartz tuning fork temperature sensor has been conducted and the thermal sensing characteristics were examined by measuring the resonance frequency shift of this sensor cause by an external temperature. The sensor prototype was successfully fabricated and calibrated from operating from 0°C to 100°C with sensitivity of 70ppm/°C. Experimental results show the sensor has high thermal sensitivity, good stability and well reproducibility. This work represents high precision and low power temperature sensor using the comprehensive thermal characterization of ZY-cut-quartz tuning fork resonator.


Sensor Review ◽  
2003 ◽  
Vol 23 (2) ◽  
pp. 134-142 ◽  
Author(s):  
He Jin ◽  
Chen Zhaoyang ◽  
Lin Jiang ◽  
Dai Jingmin

2013 ◽  
Vol 5 (4) ◽  
pp. 1232-1237 ◽  
Author(s):  
Jing Ma ◽  
Jun Xu ◽  
Jinhua Duan ◽  
Haibo Xu

2008 ◽  
Vol 47-50 ◽  
pp. 769-772 ◽  
Author(s):  
Jun Xu ◽  
Li Hua Hu ◽  
Jing Ma ◽  
Ju An Cui ◽  
Bo You

This paper discusses a smart temperature sensor system that comprises of a high performance quartz tuning fork temperature sensor, interface with CMOS circuitry and control algorithm for reconfiguration. The ideal thermo-sensitive cut for quartz tuning fork resonators is analyzed with the theory, and is optimized by FEM (Finite Element Method). The specific cut quartz tuning fork was fabricated using photolithography and the etching technology. And the tuning fork sensing element (4 3 2 . 0 1 mm × × ) is so small that can be housed in the capsule ( 6 2× Φ mm). The smart temperature sensor along with the interface IC to FPGA and special control algorithm may easily realize the sensor reconfiguration and the auto-calibration in the field. The experimental result indicates that the sensitivity of this sensor can reach C ppm o / 65 in the temperature range from-20 to 140 C o , it guarantees that precision is C o 01 . 0 , the resolution is C o 001 . 0 , and the response time is 1s.


1987 ◽  
Vol 23 (11) ◽  
pp. 1117-1122 ◽  
Author(s):  
Toshitsugu UEDA ◽  
Fusao KOHSAKA ◽  
Toshio IINO ◽  
Daisuke YAMAZAKI

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