Sound insulation performance and modal analysis of asymmetrical insulating laminated glass

Xi Zhu, Li Juan Wang, Xiao Li Wang, Yi De Zheng, Liang Luo
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Abstract

Windows are commonly the primary way for noise to enter the building environment. Most windows achieve higher sound insulation targets by simply increasing glass thickness or laminate. However, the glass thickness cannot be increased freely due to the window frame’s limitation. This research selects eleven kinds of asymmetric insulating laminated glass (glass + polyvinyl butyral + glass + air + glass) within 27 mm, which are the typical thicknesses of window frames. The three pieces of glass have equal thicknesses. The half-space acoustics method investigated the acoustic properties and modal behavior of the glass with finite thickness. The results show that when PVB or three glass increases simultaneously, and the sound insulation of each glass can be improved by 0.9∼3.4 dB or 3.7∼21.8 dB at first resonant frequencies, respectively. The glass with the best sound insulation is 7 mm glass + 0.76 mm polyvinyl butyral + 7 mm glass + 5 mm air + 7 mm glass (7 + 0.76 + 7 + 5A + 7 for short). Its sound transmission loss (TL) is 38.5 dB from 125 to 4000 Hz and 16.8 dB in the first resonant frequency (200 Hz). In addition, its first resonant frequency is the highest among eleven kinds of glass, and the number of natural frequencies in the low frequency range is only 9. These findings can provide a basis for designing asymmetric insulating laminated glass to improve the low frequency noise reduction effect effectively.
非对称中空夹层玻璃的隔音性能和模态分析
窗户通常是噪音进入建筑环境的主要途径。大多数窗户只需增加玻璃厚度或夹层就能达到较高的隔音目标。然而,由于窗框的限制,玻璃厚度不能随意增加。本研究选择了 11 种厚度在 27 毫米以内的非对称中空夹层玻璃(玻璃 + 聚乙烯醇缩丁醛 + 玻璃 + 空气 + 玻璃),这也是窗框的典型厚度。三块玻璃的厚度相等。半空间声学方法研究了有限厚度玻璃的声学特性和模态行为。结果表明,当同时增加 PVB 或三片玻璃时,每片玻璃的隔声量在第一共振频率上可分别提高 0.9∼3.4 dB 或 3.7∼21.8 dB。隔音效果最好的玻璃是 7 毫米玻璃 + 0.76 毫米聚乙烯醇缩丁醛 + 7 毫米玻璃 + 5 毫米空气 + 7 毫米玻璃(简称 7 + 0.76 + 7 + 5A + 7)。其声音传输损耗(TL)在 125 至 4000 赫兹之间为 38.5 分贝,在第一共振频率(200 赫兹)为 16.8 分贝。此外,它的第一共振频率是 11 种玻璃中最高的,而低频范围内的固有频率只有 9 个。这些发现为设计非对称中空夹层玻璃以有效提高低频降噪效果提供了依据。
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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