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Sound transmission through lined, composite panel structures: Transversely isotropic poro-elastic model.

机译:声音通过衬砌的复合面板结构传递:横向各向同性的孔隙弹性模型。

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摘要

A joint experimental and analytical investigation of the sound transmission loss (STL) and two-dimensional free wave propagation in composite sandwich panels is presented here. An existing panel, a Nomex honeycomb sandwich panel, was studied in detail. For the purpose of understanding the typical behavior of sandwich panels, a composite structure comprising two aluminum sheets with a relatively soft, poro-elastic foam core was also constructed and studied. The cores of both panels were modeled using an anisotropic (transversely isotropic) poro-elastic material theory.; Several estimation methods were used to obtain the material properties of the honeycomb core and the skin plates to be used in the numerical calculations. Appropriate values selected from among the estimates were used in the STL and free wave propagation models. The prediction model was then verified in two ways: first, the calculated wave speeds and STL of a single poro-elastic layer were numerically verified by comparison with the predictions of a previously developed isotropic model. Secondly, to physically validate the transversely isotropic model, the measured STL and the phase speeds of the sandwich panels were compared with their predicted values.; To analyze the actual treatment of a fuselage structure, multi-layered configurations, including a honeycomb panel and several layers such as air gaps, acoustic blankets and membrane partitions, were formulated. Then, to find the optimal solution for improving the sound barrier performance of an actual fuselage system, air layer depth and glass fiber lining effects were investigated by using these multi-layer models.; By using the free wave propagation model, the first anti-symmetric and symmetric modes of the sandwich panels were characterized to allow the identification of the coincidence frequencies of the sandwich panel. The behavior of the STL could then be clearly explained by comparison with the free wave propagation solutions. By performing a parameter study based both on the STL and free wave propagation speeds, the mass, stiffness and damping-controlled regions of the STL were identified. The structural factors that can be adjusted to improve STL performance were also identified.
机译:本文介绍了复合夹芯板中的声传输损耗(STL)和二维自由波传播的联合实验和分析研究。详细研究了现有的面板,即Nomex蜂窝夹心面板。为了理解夹心板的典型性能,还构建并研究了包含两个铝板的复合结构,该铝板具有相对较软的多孔弹性泡沫芯。使用各向异性(横向各向同性)孔隙弹性材料理论对两个面板的岩心进行建模。使用几种估算方法来获得要在数值计算中使用的蜂窝芯和蒙皮板的材料性能。在STL和自由波传播模型中使用了从估计值中选择的适当值。然后以两种方式验证该预测模型:首先,通过与先前开发的各向同性模型的预测结果进行比较,对单个孔隙弹性层的计算波速和STL进行数值验证。其次,为了物理验证横观各向同性模型,将测得的STL和夹心板的相速度与其预测值进行比较。为了分析机身结构的实际处理,制定了多层配置,包括蜂窝板和多层,例如气隙,隔音毯和隔膜。然后,为了找到改善实际机身系统的隔音性能的最佳解决方案,使用这些多层模型研究了空气层深度和玻璃纤维衬里效应。通过使用自由波传播模型,对夹层板的第一反对称和对称模式进行了表征,以允许识别夹层板的重合频率。然后,通过与自由波传播解决方案进行比较,可以清楚地说明STL的行为。通过基于STL和自由波传播速度进行参数研究,可以确定STL的质量,刚度和阻尼控制区域。还确定了可以调整以提高STL性能的结构因素。

著录项

  • 作者

    Kim, Jeong-Woo.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Mechanical.; Physics Acoustics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 198 p.
  • 总页数 198
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;声学;
  • 关键词

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