Rui Xiaobo, Ma Yongshuai, He Chenghao, Zhang Chi, Wang Zhuochen, Zhang Hui
State Key Laboratory of Precision Measuring Technology and Instruments, Tianjin University, Tianjin 300072, China.
College of Mechanical and Electrical Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Micromachines (Basel). 2025 Aug 31;16(9):1008. doi: 10.3390/mi16091008.
Compared with traditional piezoelectric transducers, Capacitive Micromachined Ultrasonic Transducers (CMUTs) have advantages such as better impedance matching with air, smaller size, lighter weight, higher sensitivity, and ease of array formation. Acoustic temperature measurement is a technology that utilizes the relationship between sound velocity and temperature to achieve non-contact temperature detection, with advantages such as fast response and non-invasiveness. CMUT-based acoustic temperature field measurement can achieve temperature detection in situations with narrow spaces, portability, and high measurement accuracy. This paper investigates an air-coupled CMUT device for acoustic temperature measurement, featuring a resonant frequency of 220 kHz, and composed of 16 × 8 cells. The design and fabrication of the CMUT array were completed, and the device characteristics were tested and characterized. A temperature field measurement method using mechanical scanning was proposed. A temperature measurement experimental system based on CMUT devices was constructed, achieving preliminary measurement of acoustic transmission time in both uniform and non-uniform temperature fields. Using a temperature field reconstruction algorithm, the measurement and imaging of the temperature field above an electric heating wire were accomplished and compared with the thermocouple-based temperature measurement experiment. The experimental results verified the feasibility of CMUT devices for non-contact temperature field measurement.
与传统压电换能器相比,电容式微机械超声换能器(CMUT)具有与空气更好的阻抗匹配、更小的尺寸、更轻的重量、更高的灵敏度以及易于阵列形成等优点。声学温度测量是一种利用声速与温度之间的关系来实现非接触式温度检测的技术,具有响应速度快和非侵入性等优点。基于CMUT的声学温度场测量可以在空间狭窄、便于携带且测量精度高的情况下实现温度检测。本文研究了一种用于声学温度测量的空气耦合CMUT器件,其谐振频率为220 kHz,由16×8个单元组成。完成了CMUT阵列的设计与制作,并对器件特性进行了测试和表征。提出了一种采用机械扫描的温度场测量方法。构建了基于CMUT器件的温度测量实验系统,实现了在均匀和非均匀温度场中声传播时间的初步测量。利用温度场重建算法,完成了电热丝上方温度场的测量与成像,并与基于热电偶的温度测量实验进行了比较。实验结果验证了CMUT器件用于非接触式温度场测量的可行性。