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Microstructure-based calculations and experimental results for sound absorbing porous layers of randomly packed rigid spherical beads

机译:基于随机填充的刚性球形小珠的吸声多孔层的基于微结构的计算和实验结果

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摘要

Acoustics of stiff porous media with open porosity can be very effectively modelled using the so-called Johnson-Champoux-Allard-Pride-Lafarge model for sound absorbing porous media with rigid frame. It is an advanced semi-phenomenological model with eight parameters, namely, the total porosity, the viscous permeability and its thermal analogue, the tortuosity, two characteristic lengths (one specific for viscous forces, the other for thermal effects), and finally, viscous and thermal tortuosities at the frequency limit of 0 Hz. Most of these parameters can be measured directly, however, to this end specific equipment is required different for various parameters. Moreover, some parameters are difficult to determine. This is one of several reasons for the so-called multiscale approach, where the parameters are computed from specific finite-element analyses based on some realistic geometric representations of the actual microstructure of porous material. Such approach is presented and validated for layers made up of loosely packed small identical rigid spheres. The sound absorption of such layers was measured experimentally in the impedance tube using the so-called two-microphone transfer function method. The layers are characterised by open porosity and semi-regular microstructure: the identical spheres are loosely packed by random pouring and mixing under the gravity force inside the impedance tubes of various size. Therefore, the regular sphere packings were used to generate Representative Volume Elements suitable for calculations at the micro-scale level. These packings involve only one, two, or four spheres so that the three-dimensional finite-element calculations specific for viscous, thermal, and tortuous effects are feasible. In the proposed geometric packings, the spheres were slightly shifted in order to achieve the correct value of total porosity which was precisely estimated for the layers tested experimentally. Finally, in this paper some results b- sed on the self-consistent estimates are also provided.
机译:可以使用所谓的Johnson-Champoux-Allard-Pride-Lafarge模型对具有刚性框架的吸声多孔介质非常有效地建模具有开放孔隙的刚性多孔介质的声学。它是一种高级的半现象学模型,具有八个参数,即总孔隙率,粘滞渗透率及其热类似物,曲折度,两个特征长度(一个特定于粘性力,另一个特定于热效应),最后是粘性频率极限为0 Hz时的热曲折。这些参数中的大多数可以直接测量,但是为此,需要各种参数不同的特定设备。而且,一些参数很难确定。这是所谓的多尺度方法的几个原因之一,在该方法中,基于多孔材料实际微观结构的一些实际几何表示,通过特定的有限元分析来计算参数。提出并验证了这种方法,该方法适用于由松散堆积的相同小刚性球体组成的层。使用所谓的两麦克风传递函数方法,在阻抗管中实验测量了这些层的吸声。这些层的特征是具有开孔性和半规则的微观结构:相同的球体通过随机浇注并在各种尺寸的阻抗管内的重力作用下混合而松散地堆积。因此,使用规则球体填料来生成适用于微米级计算的代表性体积元素。这些填充物仅涉及一个,两个或四个球体,因此针对粘性,热和弯曲效应的三维有限元计算是可行的。在提出的几何填料中,将球体略微移动,以获得正确的总孔隙率值,该值已针对实验测试的层进行了精确估算。最后,本文还提供了一些基于自洽估计的结果。

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  • 来源
    《Journal of Applied Physics》 |2014年第3期|1-17|共17页
  • 作者

    Zielinski Tomasz G.;

  • 作者单位

    Institute of Fundamental Technological Research, Polish Academy of Sciences, ul. Pawinskiego 5B, 02-106 Warszawa, Poland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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