Shen Xiang, Zhao Liye, Xu Jiawen, Yao Xuwei
Key Laboratory of Micro-Inertial Instrument and Advanced Navigation Technology, Ministry of Education, School of Instrument Science and Engineering, Southeast University, Nanjing 210096, China.
Rockchip Electronics Co., Ltd., Fuzhou 350003, China.
Sensors (Basel). 2021 May 3;21(9):3168. doi: 10.3390/s21093168.
A biomimetic study on the auditory localization mechanism of was performed to improve the localization ability of small acoustic systems. We also present a microscale implementation of an acoustic localization device inspired by the auditory organ of the parasitic . The device consists of a pair of circular membranes coupled together with an elastic beam. The coupling serves to amplify the difference in magnitude and phase between the two membranes' responses as the incident angle of the sound changes, allowing directional information to be deduced from the coupled device response. The research results show that the intermembrane bridge structure improves the sound source localization and directional weak acoustic signal acquisition of sound detectors. The recognition rate of the phase difference and amplitude ratio was greatly improved. The theoretical resolution of the incident angle of the sound source can reach 2° at a phase difference recognition rate of 5°. The sound source's optimal identification frequency range for the coupling device based on the intermembrane bridge bionic structure is 300 Hz to 1500 Hz.
进行了一项关于[具体对象]听觉定位机制的仿生研究,以提高小型声学系统的定位能力。我们还展示了一种受寄生[具体对象]听觉器官启发的声学定位装置的微尺度实现。该装置由一对通过弹性梁耦合在一起的圆形膜组成。随着声音入射角的变化,这种耦合作用放大了两个膜响应之间的幅度和相位差异,从而能够从耦合装置的响应中推断出方向信息。研究结果表明,膜间桥结构提高了声音探测器的声源定位和定向弱声信号采集能力。相位差和幅度比的识别率得到了极大提高。在相位差识别率为5°时,声源入射角的理论分辨率可达2°。基于膜间桥仿生结构的耦合装置对声源的最佳识别频率范围为300Hz至1500Hz。