流激振动下夹层板多孔材料的声学优化设计

IF 1.2 4区 工程技术 Q3 ACOUSTICS International Journal of Aeroacoustics Pub Date : 2023-01-03 DOI:10.1177/1475472X221150180
Ye Li, Xin-biao Xiao, Yumei Zhang, Zhao Tang, Aipeng Pan
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引用次数: 0

摘要

本研究研究了多孔吸声材料作为衬里在双面板结构应用(如高速列车车身结构)中抑制流激振动内部噪声的方法,并进行了声学优化设计。首先,在波数域,采用跨谱Corcos模型对湍流动水动压进行表征。采用Biot理论对多孔材料进行了建模。利用模型叠加法确定了夹芯板的传输损耗。考虑了三种夹层板结构:空气-空气(A-A)、键合-键合(B-B)和键合-空气(B-A)。采用动水压力作用下三种结构形式对多孔材料流激振动内部噪声的抑制效果进行了评价。研究了流速、多孔材料厚度和密度以及三种聚酰亚胺泡沫塑料对夹层板TL特性的影响。结果表明,流速对夹芯板的热导率有显著影响。流速每增加100 km/h,夹层板的隔声强度降低3 ~ 4 dB, B-A结构在大多数频率下都具有良好的隔声性能。随着材料厚度的增加,夹层板结构的热释光先增大后减小,材料密度主要影响结构的中高频热释光。以平均传输损耗(tlag)最大化和结构重量最小化为目标,对B-A结构进行了声学优化设计,并采用非支配排序遗传算法(NSGA-Ⅱ)实现了两个目标函数之间的平衡。当结构总质量降低0.2 kg时,夹层板结构的tlavs增加了5.2 dB。
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Acoustic optimization design of porous materials on sandwich panel under flow-induced vibration
In this study, porous sound-absorbing materials used as a lining in double-panel structure applications (such as high-speed train body structures) to limit flow-induced vibration interior noise were studied, and acoustic optimization design was performed. First, in the wavenumber domain, the cross-spectrum Corcos model was used to characterize the dynamic hydrodynamic pressure of turbulence. Biot’s theory is used to model the porous materials. The transmission loss (TL) of the sandwich panel were also determined based on the model superposition method. Three types of sandwich panel structures were considered: air–air (A–A), bonded-bonded (B–B), and bonded-air (B–A). The TL of the three structure types under hydrodynamic pressure was used to evaluate the suppression of flow-induced vibration interior noise in porous materials. The effects of flow velocity, thickness and density of the porous material, and three types of polyimide foam on the TL characteristics of the sandwich panel were investigated. The results show that the flow velocity has a significant influence on the TL of the sandwich panel. The TL of the sandwich panel decreases by 3–4 dB when the flow velocity increases by 100 km/h The B–A configuration has satisfactory sound insulation performance at most frequencies. With an increase in material thickness, the TL of the sandwich panel structure first increases and then decreases, and the material density mainly affects the TL of the structure at intermediate and high frequencies. Based on the objectives of maximizing the average transmission loss (TLavg) and minimizing the structural weight, the acoustic optimization design of the B–A structure was performed, and the balance between the two objective functions was achieved by a nondominated sorting genetic algorithm (NSGA-Ⅱ). The TLavg s of the sandwich panel structure increased by 5.2 dB when the total mass of the structure was decreased by 0.2 kg.
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来源期刊
International Journal of Aeroacoustics
International Journal of Aeroacoustics ACOUSTICS-ENGINEERING, AEROSPACE
CiteScore
2.10
自引率
10.00%
发文量
38
审稿时长
>12 weeks
期刊介绍: International Journal of Aeroacoustics is a peer-reviewed journal publishing developments in all areas of fundamental and applied aeroacoustics. Fundamental topics include advances in understanding aeroacoustics phenomena; applied topics include all aspects of civil and military aircraft, automobile and high speed train aeroacoustics, and the impact of acoustics on structures. As well as original contributions, state of the art reviews and surveys will be published. Subtopics include, among others, jet mixing noise; screech tones; broadband shock associated noise and methods for suppression; the near-ground acoustic environment of Short Take-Off and Vertical Landing (STOVL) aircraft; weapons bay aeroacoustics, cavity acoustics, closed-loop feedback control of aeroacoustic phenomena; computational aeroacoustics including high fidelity numerical simulations, and analytical acoustics.
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