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Finite Element Analysis on Acoustic and Mechanical Performance of Flexible Perforated Honeycomb-Corrugation Hybrid Sandwich Panel

机译:柔性穿孔蜂窝瓦楞杂交夹芯板声学与机械性能有限元分析

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摘要

Since proposed, the perforated honeycomb-corrugation sandwich panel has attracted a lot of attention due to its superior broadband sound absorption at low frequencies and excellent mechanical stiffness/strength. However, most existing studies have assumed a structure made of high-strength materials and studied its performance based on the ideal rigid-wall model with little consideration for acoustic-structure interaction, thereby neglecting the structural vibrations caused by the material’s elasticity. In this paper, we developed a more realistic model considering the solid structural dynamics using the finite element method (FEM) and by applying aluminum and rubber as the structural material. The enhancement of the low-frequency performance and inhibition of broadband absorption coexisted in low-strength rubbers, implying a compromise in the selection of Young's modulus to balance these two influences. Further analysis on thermal-viscous dissipation, mechanical energy, and average structural stress indicated that the structure should work right below the resonant frequency for optimization. Based on these findings, we designed a novel aluminum-rubber composite structure possessing enhanced low-frequency absorption, high resistance to shear load, normal compression, and thermal expansion. Our research is expected to shed some light on noise control and the design of multifunctional acoustic metamaterials.
机译:由于提出的,所述穿孔的蜂窝状波纹夹芯板已经吸引了大量的关注,由于在低频和优异的机械刚度/强度其优越的宽带声音吸收。然而,大多数现有的研究已经假定由高强度材料的结构,且基于与很少考虑到理想的刚性壁模型声结构相互作用,从而忽略由原材料引起的的弹性结构振动研究了其性能。在本文中,我们开发了使用考虑了有限元法(FEM)的固体结构动力学的更现实的模型并通过施加铝和橡胶作为结构材料。低频性能和在低强度的橡胶共存宽带吸收的抑制的增强,这意味着在杨氏模量来平衡这两种影响的选择进行折衷。上热粘性耗散,机械能,并且平均结构应力进一步分析表明,该结构应该工作正下方为优化的共振频率。基于这些发现,我们设计了一种新的铝 - 橡胶复合结构具有增强的低频吸收,高抗剪切负载,正常压缩和热膨胀。我们的研究有望揭示噪音控制以及多功能音响超材料的设计的一些情况。

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