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Design of an Adjustable Sound-Absorbing Structure with Low Frequency Advantages

APPLIED ACOUSTICS(2024)

Key Laboratory of Traffic Safety on Track

Cited 1|Views6
Abstract
The thickness of microperforated panel absorbers with low-frequency sound absorption ability is often large and the absorption bandwidth is limited. To address this issue, a adjustable microperforated panel structure with low-frequency advantage (ASWLF) was designed. Compared to conventional structures, the introduction of inclined chambers allows the structure to absorb lower-frequency noise at the same thickness, enhancing spatial utilization efficiency. The addition of a rotating structure design broadens the frequency range over which the structure can operate effectively. The addition of a rotating structure design broadens the frequency range of the structure's action. The acoustic absorption coefficient of the model can be calculated using acoustic-electric analogy, which is used to predict the acoustic absorption coefficient of the ASWLF structure. The experimental results show that, with the same acoustic absorption performance, the thickness of the structure is reduced by 36.7%. The multi-stage combination allows the structure to achieve better acoustic absorption performance in a wider frequency band. By introducing the PSO optimization algorithm, the optimized ASWLF structure further improves the acoustic absorption frequency band by 32.9%. This study provides an effective method for solving noise environments under different conditions in industrial practical applications.
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Key words
Microperforated panel,Broadband sound absorption,Low frequency advantage,Adjustable perforation rate
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要点】:本文设计了一种具有低频优势的可调节微穿孔板吸音结构(ASWLF),通过引入倾斜室和旋转结构设计,提高了空间利用效率和拓宽了有效操作频率范围,并结合PSO优化算法进一步提高了吸音性能。

方法】:采用声电类比方法计算模型声吸收系数,预测ASWLF结构的声学吸收性能。

实验】:通过实验验证了ASWLF结构在相同吸音性能下,结构厚度减少36.7%,并且通过多阶段组合使结构在更宽频率范围内实现更好的吸音性能;利用PSO优化算法后,吸音频率带进一步改善32.9%。实验使用的数据集名称未在论文中明确提及。