首页> 外文期刊>Journal of Sound and Vibration >Combining the 2.5D FE-BE method and the TMM method to study the vibro-acoustics of acoustically treated rib-stiffened panels
【24h】

Combining the 2.5D FE-BE method and the TMM method to study the vibro-acoustics of acoustically treated rib-stiffened panels

机译:结合2.5D Fe-Be方法和TMM方法研究声学处理的罗纹加强面板的振动声学

获取原文
获取原文并翻译 | 示例
       

摘要

This paper is concerned with the prediction of the vibro-acoustic behavior of rib-stiffened panels treated with multiple layers of porous materials. The acoustically treated rib-stiffened panels are assumed to be uniform and infinitely long in one direction (the longitudinal direction) but the cross-section can have an arbitrary and often complicated shape. Although the two-and-half dimensional structural finite element method (2.5D FEM) and the two-and-half dimensional acoustic boundary element method (2.5D BEM) may be combined to perform the vibro-acoustic prediction, the presence of the multiple layers of acoustic treatment often makes the prediction too time-consuming. More efficient methods are required for such structures and the aim of this paper is to propose such a method. The rib-stiffened panel and the fluid domain containing the incident and reflected sound waves are modelled using 2.5D FEM-BEM while the acoustic treatment layer and the fluid domain containing the transmitted sound waves are dealt with, approximately, using the transfer matrix method (TMM). The coupling of TMM and 2.5D FEM-BEM is formulated in detail. Since the acoustically treated panel is assumed to be flat and baffled, the 2.5D BEM is based on the Rayleigh integral in the wavenumber domain. Meanwhile, the TMM is based on a two-dimensional Fourier transform which implies that the porous layers also extend to cover the baffle; the validity of this assumption is explored. The accuracy and efficiency of the method is compared with a full 2.5D FE-BE method for a homogeneous plate with attached layers of absorbent material. It is shown that the method proposed in this paper can reduce calculation time by about a factor of three compared with the full 2.5D FE-BE method. The proposed method is then applied to study the sound transmission loss (STL) of a typical rib-stiffened panel from a train carriage which is acoustically treated with different porous material layers, demonstrating that the design of the acoustic treatment can have a significant effect on the STL of the panel. (C) 2020 Elsevier Ltd. All rights reserved.
机译:本文研究了多层多孔材料加筋板的振动声学特性。假定经过声学处理的肋加劲板在一个方向(纵向)上均匀且无限长,但横截面可能具有任意且通常复杂的形状。虽然可以将二维和半维结构有限元法(2.5D FEM)和二维和半维声学边界元法(2.5D BEM)结合起来进行振动声学预测,但多层声学处理的存在往往使预测过于耗时。这种结构需要更有效的方法,本文的目的就是提出这样一种方法。使用2.5D FEM-BEM对肋加劲板和包含入射和反射声波的流体域进行建模,而使用传递矩阵法(TMM)对声学处理层和包含透射声波的流体域进行近似处理。详细阐述了TMM与2.5D FEM-BEM的耦合关系。由于经过声学处理的面板被假定为平坦且有挡板,因此2.5D边界元法基于波数域中的瑞利积分。同时,TMM基于二维傅里叶变换,这意味着多孔层也延伸至覆盖挡板;探讨了这一假设的有效性。该方法的准确性和效率与全2.5D FE-BE方法进行了比较,该方法适用于带有吸附材料附着层的均质板。结果表明,与全2.5D FE-BE方法相比,本文提出的方法可将计算时间缩短约三倍。然后,将所提出的方法应用于火车车厢典型加肋壁板的声传输损失(STL)研究,结果表明,声处理设计对壁板的STL有显著影响。(C) 2020爱思唯尔有限公司版权所有。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号