Computational and Theoretical Investigation of Acoustical and Vibrational Properties of Rigid Thin Material

Acoustics Pub Date : 2024-01-16 DOI:10.3390/acoustics6010005
H. Aygun
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Abstract

A computational and theoretical investigation of acoustical and vibrational properties of rigid thin fiberglass material was carried out for different boundary conditions. Fiberglass materials could be applied in industries varying from the aircraft and automotive sectors to the built environment and construction sectors. Plate vibration and acoustic radiation were applied to predict the deflection of the thin fiberglass material and sound radiation efficiency at different locations on its surface, while a study-controlled equation of motion known as the Kirchhoff thin plate theory was applied for a COMSOL simulation of the thin material to determine the deflection of the plate and to obtain stress distribution, velocity contour, displacement, and acoustic pressure at the first resonance of the material. The results of this paper show that thin fiberglass material could be applied to sandwich building elements to form panels for reducing airborne noise and to lessen the sound transmission of structural borne noise, to cover noise barriers to make them more sustainable and weather resistant, to dampen the vibration of machines, and to reduce the structural vibration of buildings.
刚性薄材料声学和振动特性的计算与理论研究
针对不同的边界条件,对刚性薄玻璃纤维材料的声学和振动特性进行了计算和理论研究。玻璃纤维材料可应用于从飞机和汽车行业到建筑环境和建筑行业的各个领域。应用板振动和声辐射来预测薄玻璃纤维材料的挠度及其表面不同位置的声辐射效率,同时应用研究控制的运动方程(即 Kirchhoff 薄板理论)对薄材料进行 COMSOL 仿真,以确定板的挠度,并获得材料第一次共振时的应力分布、速度轮廓、位移和声压。本文的研究结果表明,薄玻璃纤维材料可应用于夹层建筑构件,形成减少空气传播噪音和减少结构传播噪音的面板,也可用于覆盖隔音屏障,使其更具可持续性和耐候性,还可用于抑制机器振动和减少建筑物的结构振动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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