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含空腔及格栅增强夹芯复合材料水下吸声特性分析

Sound Absorption Characteristics of Composite Sandwich Materials with Cavities and Grid Reinforcements

  • 摘要: 基于传递函数法原理,采用有限元法建立了含空腔及格栅增强复合夹芯材料水下声学特性有限元数值分析模型,同时考虑材料的频 变特性,通过与理论解和试验结果对比,验证了计算方法准确性;系统研究了空腔体积、形状对该类复杂构型声学材料吸收特性的影响规律和吸声机理,并进一步设计分析了新型多层复合结构的吸声特性。研究结果表明:空腔体积占比越大,材料在6000 Hz以下的吸声效果越好,其原因是未发生谐振时,结构刚度的减小,和吸声材料与空腔耦合面振动应变的增加,使得材料对声能耗散的作用增大;声波入射方向球形和锥形空腔的存在使得结构内部产生阻抗渐变效应,可以改善吸声曲线前两个吸声峰值;钢制球壳的存在屏蔽了空腔的谐振机制,无法有效改善材料在6000 Hz以下的吸声性能,但在钢制球壳的弹性共振以及与吸声材料的阻抗失配的双重机制作用下,材料在8000 Hz以上的吸声性能有所提高,且当空腔占比越大时这种提升效果越明显。本文研究可为该类材料在水下工程结构和装备上的实际应用提供理论与技术基础。

     

    Abstract: Based on the principle of the transfer function method, a numerical analysis model for the underwater acoustic characteristics of composite sandwich materials with cavities and grid reinforcements was established using the finite element method, while accounting for the frequency-dependent properties of the materials. The accuracy of the computational method was verified by comparing it with theoretical solutions and experimental results. Subsequently, a systematic study was conducted on the influence of cavity volume and shape on the absorption properties and mechanisms of such complex-configuration acoustic materials. Furthermore, the sound absorption characteristics of a novel multi-layer composite structure were designed and analyzed. The research results indicate that larger cavities lead to better sound absorption performance below 6000 Hz. In the absence of resonance, the primary mechanism involves reducing structural stiffness and increasing the vibrational strain at the coupling interface between the sound-absorbing material and the cavity, thereby dissipating acoustic energy. Spherical and conical cavities exhibit an impedance gradient effect under incident sound waves, contributing to the first two absorption peaks. However, the presence of a steel spherical shell shields the cavity's resonance mechanism, preventing improvement in absorption below 6000 Hz. On the other hand, under the dual mechanisms of impedance mismatch between the thin shell and the sound-absorbing material and elastic resonance, the material's absorption performance is enhanced above 8000 Hz, with greater improvement observed as the cavity volume increases. This study provides theoretical and technical support for the application of such materials in underwater engineering structures and equipment.

     

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