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Mechanical and Acoustic Performance of Sandwich Panels With Hybrid Cellular Cores

机译:混合蜂窝芯夹芯板的力学和声学性能

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摘要

Sandwich structures that are embedded with cellular materials show excellent performance in terms of mechanics, electromagnetics, and acoustics. In this paper, sandwich panels with hybrid cellular cores of hexagonal, re-entrant hexagonal, and rectangular configurations along the panel surface are designed. The spectral element method (SEM) is applied to accurately predict the dynamic performance of the sandwich panels with a reduced number of elements and the system scale within a wide frequency range. The mechanical performance and the acoustic performance at normal incidence of the proposed structures are investigated and compared with conventional honeycomb panels with fixed cell geometries. It was found that the bending stiffness, fundamental frequencies, and sound transmission loss (STL) of the presented sandwich panels can be effectively changed by adjusting their hybrid cellular core configurations. Shape optimization designs of a hybrid cellular core for maximum STL are presented for specified tonal and frequency band cases at normal incidence. Hybrid sandwich panels increase the sound insulation property by 24.7%, 20.6%, and 109.6% for those cases, respectively, compared with conventional panels in this study. These results indicate the potential of sandwich structures with hybrid cellular cores in acoustic attenuation applications. Hybrid cellular cores can lead to inhomogeneous mechanical performance and constitute a broader platform for the optimum mechanical and acoustic design of sandwich structures.
机译:嵌入蜂窝材料的三明治结构在机械,电磁和声学方面表现出出色的性能。在本文中,设计了沿面板表面具有六边形,凹角六边形和矩形配置的混合蜂窝状芯的夹心板。光谱元素方法(SEM)用于在较少的元素数量和系统规模在较宽的频率范围内准确预测夹芯板的动态性能。研究了所提出结构的机械性能和垂直入射时的声学性能,并将其与具有固定单元几何形状的常规蜂窝板进行了比较。已经发现,所提出的夹心板的弯曲刚度,基频和声传输损耗(STL)可以通过调节它们的混合蜂窝芯结构而有效地改变。针对法向入射的特定音调和频段情况,提出了用于最大STL的混合蜂窝核心的形状优化设计。与本研究中的传统面板相比,混合夹心面板的隔音效果分别提高了24.7%,20.6%和109.6%。这些结果表明具有混合蜂窝芯的三明治结构在声学衰减应用中的潜力。混合蜂窝芯可能导致不均匀的机械性能,并为三明治结构的最佳机械和声学设计提供了更广阔的平台。

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