Yue Yan, Dong Zhifei, Qi Zhi-Mei
State Key Laboratory of Transducer Technology, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing 100190, China.
School of Electronic, Electrical, and Communication Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.
Sensors (Basel). 2025 Apr 12;25(8):2445. doi: 10.3390/s25082445.
Acoustic temperature measurement (ATM) and sound source localization (SSL) are two important applications of acoustic sensors. The development of novel acoustic sensors capable of both ATM and SSL is an innovative research topic with great interest. In this work, an acoustic Fabry-Perot resonance detector (AFPRD) and its cross-shaped array were designed and fabricated, and the passive ATM function of the AFPRD and the SSL capability of the AFPRD array were simulated and experimentally verified. The AFPRD consists of an acoustic waveguide and a microphone with its head inserted into the waveguide, which can significantly enhance the microphone's sensitivity via the FP resonance effect. As a result, the frequency response curve of AFPRD can be easily measured using weak ambient white noise. Based on the measured frequency response curve, the linear relationship between the resonant frequency and the resonant mode order of the AFPRD can be determined, the slope of which can be used to calculate the ambient sound velocity and air temperature. The AFPRD array was prepared by using four bent acoustic waveguides to expand the array aperture, which combined with the multiple signal classification (MUSIC) algorithm can be used for distant multi-target localization. The SSL accuracy can be improved by substituting the sound speed measured in real time into the MUSIC algorithm. The AFPRD's passive ATM function was verified in an anechoic room with white noise as low as 17 dB, and the ATM accuracy reached 0.4 °C. The SSL function of the AFPRD array was demonstrated in the outdoor environment, and the SSL error of the acoustic target with a sound pressure of 35 mPa was less than 1.2°. The findings open up a new avenue for the development of multifunctional acoustic detection devices and systems.
声温度测量(ATM)和声源定位(SSL)是声学传感器的两个重要应用。开发同时具备ATM和SSL功能的新型声学传感器是一个备受关注的创新性研究课题。在这项工作中,设计并制作了一种声学法布里 - 珀罗共振探测器(AFPRD)及其十字形阵列,并对AFPRD的被动ATM功能和AFPRD阵列的SSL能力进行了模拟和实验验证。AFPRD由一个声波导和一个头部插入波导的麦克风组成,通过法布里 - 珀罗共振效应可显著提高麦克风的灵敏度。因此,利用微弱的环境白噪声就能轻松测量AFPRD的频率响应曲线。基于测得的频率响应曲线,可以确定AFPRD的共振频率与共振模式阶数之间的线性关系,其斜率可用于计算环境声速和空气温度。通过使用四个弯曲的声波导来扩大阵列孔径制备了AFPRD阵列,结合多重信号分类(MUSIC)算法可用于远距离多目标定位。将实时测量的声速代入MUSIC算法可提高SSL精度。在本底噪声低至17 dB的消声室中验证了AFPRD的被动ATM功能,ATM精度达到0.4°C。在室外环境中展示了AFPRD阵列的SSL功能,声压为35 mPa的声学目标的SSL误差小于1.2°。这些发现为多功能声学检测设备和系统的发展开辟了一条新途径。