Rahaman Ashiqur, Kim Byungki
School of Mechatronics Engineering, Korea University of Technology and Education, Cheonan, 31253 Republic of Korea.
Future Convergence Engineering, Korea University of Technology and Education, Cheonan, 31253 Republic of Korea.
Microsyst Nanoeng. 2022 Jun 15;8:66. doi: 10.1038/s41378-022-00389-9. eCollection 2022.
Fly ears have been well-studied and mimicked to achieve subwavelength directional sensing, but their efficacy in sound source localization in three dimensions, utilizing sound from the -, -, and -axes, has been less explored. This paper focuses on a mm-sized array of three ear-inspired piezoelectric MEMS directional microphones, where their in-plane directionality is considered a cue to demonstrate sound source localization in three dimensions. In the array, biomimetic MEMS directional microphones are positioned in a 120° angular rotation; as a result, six diaphragms out of three directional microphones keep a normal-axis relative to the sound source at six different angles in the azimuth plane starting from 0° to 360° in intervals of ±30°. In addition, the cosine-dependent horizontal component of the applied sound gives cues for -axis directional sensing. The whole array is first analytically simulated and then experimentally measured in an anechoic chamber. Both results are found to be compliant, and the angular resolution of sound source localization in three dimensions is found to be ±2° at the normal axis. The resolution at the azimuth plane is found to be ±1.28°, and the same array shows a ± 4.28° resolution when sound is varied from the elevation plane. Looking at the scope within this area combined with the presented results, this work provides a clear understanding of sound source localization in three dimensions.
苍蝇的耳朵已经得到了充分研究,并被模仿用于实现亚波长方向传感,但它们在利用来自x轴、y轴和z轴声音进行三维声源定位方面的功效尚未得到充分探索。本文重点研究了一种由三个受耳朵启发的压电微机电系统(MEMS)定向麦克风组成的毫米级阵列,其中它们的平面内方向性被视为在三维空间中演示声源定位的一个线索。在该阵列中,仿生MEMS定向麦克风以120°角旋转排列;因此,三个定向麦克风中的六个振膜在方位平面内相对于声源保持法线轴,角度从0°到360°,间隔为±30°。此外,施加声音的与余弦相关的水平分量为z轴方向传感提供了线索。整个阵列首先进行了分析模拟,然后在消声室中进行了实验测量。发现这两个结果是一致的,并且在法线轴上三维声源定位的角分辨率为±2°。在方位平面上的分辨率为±1.28°,当声音从仰角平面变化时,同一阵列的分辨率为±4.28°。结合本文结果来看该领域的研究范围,这项工作为三维空间中的声源定位提供了清晰的认识。