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基于亥姆霍兹共鸣器原理、采用多种材料制作的吸声器及其性能评估

Fabrication and Performance Evaluation of the Helmholtz Resonator Inspired Acoustic Absorber Using Various Materials.

作者信息

Lee Sung Ho, Kang Bong Su, Kim Gyu Man, Roh Yong Rae, Kwak Moon Kyu

机构信息

Department of Mechanical Engineering, Kyungpook National University, Daegu 41566, Korea.

出版信息

Micromachines (Basel). 2020 Oct 31;11(11):983. doi: 10.3390/mi11110983.

Abstract

A soundwave is transmitted by adjacent molecules in the medium, and depending on the type of sound, it exhibits various characteristics such as frequency, sound pressure, etc. If the acoustic wavelength of the soundwave is sufficiently long compared with the size of an acoustic element, physical analysis within the sound element could be simplified regardless of the shape of the acoustic element: this is called "long wavelength approximation". A Helmholtz resonator, a representative acoustic element which satisfies the "long wavelength theory", consists of a neck part and a cavity part. The Helmholtz resonators can absorb certain frequencies of sound through resonance. To exhibit attenuation properties at ultrasound range, the Helmholtz resonator should be made into a microscale since Helmholtz resonators should satisfy the "long wavelength approximation". In this study, Helmholtz resonator inspired acoustic elements were fabricated using MEMS technology, and acoustic attenuation experiments in a water bath were conducted using various shapes and materials. As a result, the fabricated samples showed admirable attenuation properties up to ~13 dB mm at 1 MHz. The results were analyzed to derive the necessary conditions for the fabrication of acoustic elements with acoustic attenuation properties in ultrasound range.

摘要

声波由介质中的相邻分子传递,根据声音的类型,它呈现出各种特性,如频率、声压等。如果声波的声学波长与声学元件的尺寸相比足够长,那么无论声学元件的形状如何,声学元件内部的物理分析都可以简化:这被称为“长波长近似”。亥姆霍兹共振器是满足“长波长理论”的典型声学元件,它由颈部和腔体部分组成。亥姆霍兹共振器可以通过共振吸收特定频率的声音。为了在超声范围内表现出衰减特性,由于亥姆霍兹共振器应满足“长波长近似”,所以应将其制作成微尺度。在本研究中,利用微机电系统(MEMS)技术制造了受亥姆霍兹共振器启发的声学元件,并使用各种形状和材料在水浴中进行了声衰减实验。结果,所制造的样品在1 MHz时显示出高达约13 dB/mm的令人满意的衰减特性。对结果进行了分析,以得出制造在超声范围内具有声衰减特性的声学元件的必要条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/879d/7692332/316d9c989c29/micromachines-11-00983-g001.jpg

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