方克鹏,郭瑜,樊家伟,等. 多孔材料声学参数辨识与声学屏蔽箱设计应用[J]. 失效分析与预防,2025,20(5):341-347,382. doi: 10.3969/j.issn.1673-6214.2025.05.001
    引用本文: 方克鹏,郭瑜,樊家伟,等. 多孔材料声学参数辨识与声学屏蔽箱设计应用[J]. 失效分析与预防,2025,20(5):341-347,382. doi: 10.3969/j.issn.1673-6214.2025.05.001
    FANG Kepeng,GUO Yu,FAN Jiawei,et al. Acoustic parameter identification of porous materials and application in acoustic shielding enclosures design[J]. Failure analysis and prevention,2025,20(5):341-347,382. doi: 10.3969/j.issn.1673-6214.2025.05.001
    Citation: FANG Kepeng,GUO Yu,FAN Jiawei,et al. Acoustic parameter identification of porous materials and application in acoustic shielding enclosures design[J]. Failure analysis and prevention,2025,20(5):341-347,382. doi: 10.3969/j.issn.1673-6214.2025.05.001

    多孔材料声学参数辨识与声学屏蔽箱设计应用

    Acoustic Parameter Identification of Porous Materials and Application in Acoustic Shielding Enclosures Design

    • 摘要: 声学屏蔽箱作为电子设备噪声测试的核心装置,其隔声结构通常需通过多层隔声材料实现宽频段隔声性能。为提高现有声学屏蔽箱的宽频隔声性能,本文通过分析材料层组合顺序与多孔材料分布对隔声性能的影响规律,进而优化现有声学屏蔽箱复合结构的宽频隔声性能。研究中采用JCA模型精确表征刚性骨架多孔材料的宽频吸声特性,结合差分进化算法反演玻璃棉的声学参数,并利用传递矩阵法构建多层复合结构以优化其隔声性能。研究表明,在材料种类和总厚度保持不变的前提下,通过对多孔材料进行合理的分层与分布配置,可有效增强不同频段的隔声性能,实现宽频隔声性能调控。本文所提出的声学屏蔽箱复合结构设计方案相比现有结构平均隔声量提高了4.4 dB。

       

      Abstract: Acoustic shielding enclosures serve as critical infrastructure for electronic equipment noise testing, requiring multilayer sound-insulating structures to achieve broadband sound insulation performance. To enhance the broadband sound insulation of conventional enclosures, this study optimizes composite structures by analyzing the influence of material stacking sequence and porous material distribution on sound insulation characteristics. The Johnson-Champoux-Allard (JCA) model characterizes the broadband sound absorption of rigid-frame porous materials while inverse acoustic parameter identification of fiberglass is performed using a differential evolution algorithm. A transfer matrix method (TMM) is utilized to construct multilayer composite structures for sound insulation optimization. Results demonstrate that with fixed material composition and total thickness, strategic porous materials layering and distribution effectively enhance sound insulation across frequency bands, enabling broadband noise control. The optimized acoustic enclosure design improves average sound transmission loss by 4.4 dB compared to conventional configurations.

       

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