Bi Shaohua, Yang Fei, Tang Shuai, Shen Xinmin, Zhang Xiaonan, Zhu Jingwei, Yang Xiaocui, Peng Wenqiang, Yuan Feng
Field Engineering College, Army Engineering University of PLA, Nanjing 210007, China.
Systems Engineering Institute, Academy of Military Sciences, Beijing 100071, China.
Materials (Basel). 2023 Feb 14;16(4):1597. doi: 10.3390/ma16041597.
A Helmholtz resonator (HR) with an embedded aperture is an effective acoustic metamaterial for noise reduction in the low-frequency range. Its sound absorption property is significantly affected by the aperture shape. Sound absorption properties of HRs with the embedded aperture for various tangent sectional shapes were studied by a two-dimensional acoustic finite element simulation. The sequence of resonance frequency from low to high was olive, common trapeziform, reverse trapeziform, dumbbell and rectangle. Meanwhile, those HRs for various cross-sectional shapes were investigated by a three-dimensional acoustic finite element simulation. The sequence of resonance frequency from low to high were round, regular hexagon, square, regular triangle and regular pentagon. Moreover, the reason for these phenomena was analyzed by the distributions of sound pressure, acoustic velocity and temperature. Furthermore, on the basement of the optimum tangent and cross-sectional shape, the sound absorption property of parallel-connection Helmholtz resonators was optimized. The experimental sample with optimal parameters was fabricated, and its average sound absorption coefficient reached 0.7821 in 500-820 Hz with a limited thickness of 30 mm. The research achievements proved the significance of aperture shape, which provided guidance for the development of sound absorbers in the low-frequency range.
带有嵌入式孔径的亥姆霍兹共振器(HR)是一种用于低频降噪的有效声学超材料。其吸声特性受孔径形状的显著影响。通过二维声学有限元模拟研究了具有不同切线截面形状的嵌入式孔径HR的吸声特性。共振频率从低到高的顺序为橄榄形、普通梯形、倒梯形、哑铃形和矩形。同时,通过三维声学有限元模拟研究了各种横截面形状的HR。共振频率从低到高的顺序为圆形、正六边形、正方形、正三角形和正五边形。此外,通过声压、声速和温度分布分析了这些现象的原因。此外,在最佳切线和横截面形状的基础上,对并联亥姆霍兹共振器的吸声特性进行了优化。制作了具有最佳参数的实验样品,其在500 - 820 Hz范围内、厚度仅为30 mm时平均吸声系数达到0.7821。研究成果证明了孔径形状的重要性,为低频吸声器的发展提供了指导。