A High-Precision Quartz Resonant Ultra-High Pressure Sensor with Integrated Pressure Conversion Structure

Author:

Zhang Quanwei1ORCID,Li Cun2ORCID,Li Huafeng1,Liu Yan1,Wang Jue1,Wang Xiaolong1,Wang Yuan1,Cheng Fabin1,Han Haijun1,Zhang Peng1

Affiliation:

1. Institute of Systems Engineering, China Academy of Engineering Physics, Mianyang 621900, China

2. The State Key Laboratory for Manufacturing System Engineering, Xi’an Jiaotong University, Xi’an 710049, China

Abstract

A quartz resonant pressure sensor is proposed for high-precision measurement of ultra-high pressure. The resonant unit realizes a push–pull differential layout, which restrains the common-mode interference factor, and the resonator is only subject to axial force. The pressure conversion unit is made in an integrated manner, avoiding output drift problems caused by residual stress and small gaps during assembly, welding, and other processes in sensor preparation. Theoretical and simulation analysis was conducted on the overall design scheme of the sensor in this paper, verifying the feasibility. Sensor prototypes were created and performance experiments were conducted. The experimental results show that the sensitivity of the ultra-high pressure sensor is 46.32 Hz/MPa at room temperature within the pressure range of 120 MPa, and the comprehensive accuracy is 0.0266%. The comprehensive accuracy of the sensor is better than 0.0288% FS in the full temperature range environment. This proves that the sensor scheme is suitable for high-precision and high-stability detection of ultra-high pressure, providing new solutions in special pressure measurement fields such as deep-sea and oil exploration.

Funder

The National Key R&D Program of China

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

Reference17 articles.

1. Recent advances in energy-saving chemiresistive gas sensors: A review;Majhi;Nano Energy,2021

2. Recent Progress of Flexible Image Sensors for Biomedical Applications;Yokota;Adv. Mater.,2021

3. Microengineering Pressure Sensor Active Layers for Improved Performance;Ruth;Adv. Funct. Mater.,2020

4. Method to measure muzzle shock wave pressure field for a naval gun;Lai;Chin. J. Sens. Actuators,2015

5. An ultra-high pressure sensor with cylinder structure;Zhao;J. Mech. Sci. Technol.,2013

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