Zieliński Tomasz G
Institute of Fundamental Technological Research, Polish Academy of Sciences, ul. Pawinskiego 5B, 02-106 Warsaw, Poland.
J Acoust Soc Am. 2015 Apr;137(4):1790-801. doi: 10.1121/1.4915475.
This paper proposes and discusses an approach for the design and quality inspection of the morphology dedicated for sound absorbing foams, using a relatively simple technique for a random generation of periodic microstructures representative for open-cell foams with spherical pores. The design is controlled by a few parameters, namely, the total open porosity and the average pore size, as well as the standard deviation of pore size. These design parameters are set up exactly and independently, however, the setting of the standard deviation of pore sizes requires some number of pores in the representative volume element (RVE); this number is a procedure parameter. Another pore structure parameter which may be indirectly affected is the average size of windows linking the pores, however, it is in fact weakly controlled by the maximal pore-penetration factor, and moreover, it depends on the porosity and pore size. The proposed methodology for testing microstructure-designs of sound absorbing porous media applies the multi-scale modeling where some important transport parameters-responsible for sound propagation in a porous medium-are calculated from microstructure using the generated RVE, in order to estimate the sound velocity and absorption of such a designed material.
本文提出并讨论了一种用于吸声泡沫材料形态设计和质量检测的方法,该方法采用相对简单的技术来随机生成代表具有球形孔隙的开孔泡沫的周期性微结构。设计由几个参数控制,即总开孔率、平均孔径以及孔径的标准偏差。这些设计参数是精确且独立设定的,然而,孔径标准偏差的设定需要在代表性体积单元(RVE)中有一定数量的孔隙;这个数量是一个程序参数。另一个可能受到间接影响的孔隙结构参数是连接孔隙的窗口的平均尺寸,然而,它实际上受最大孔隙穿透因子的控制较弱,而且,它还取决于孔隙率和孔径。所提出的用于测试吸声多孔介质微结构设计的方法应用了多尺度建模,其中一些负责多孔介质中声音传播的重要传输参数是使用生成的RVE从微结构计算得出的,以便估计这种设计材料的声速和吸声性能。