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Acoustic performance prediction of a multilayered finite cylinder equipped with porous foam media

机译:配备有多孔泡沫介质的多层有限气缸的声学性能预测

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This paper presents an analytical model to embed porous materials in a finite cylindrical shell in order to obtain the sound transmission loss coefficient. Although the circumferential modes are considered only for calculating the amount of the transmitted noise through an infinitely long cylinder, the present study employs the longitudinal modes in addition to circumferential ones to analyze the vibroacoustic performance of a simply supported cylinder subjected to the porous core based on the first order shear deformation theory. To achieve this goal, the structure is immersed in a fluid and excited by an acoustic wave. In addition, the acoustic pressures and the displacements are developed in the form of double Fourier series. Since these series consist of infinite modes, it is essential to terminate this process by considering adequate modes. Hence, the convergence checking algorithm is employed in the form of some three-dimensional configurations with respect to length, frequency and radius. Afterwards, some figures are plotted to confirm the accuracy of the present formulation. In these configurations, the obtained sound transmission loss from the present study is compared with that of the infinite one. It is shown that by increasing the length of the structure, the results are approached to sound transmission loss of the infinite shells. Moreover, a new approach is proposed to show the transverse displacement of a finite poroelastic cylinder at different frequencies. Based on the outcomes, it is found that by enhancing the length of the poroelastic cylinder, the amount of the transmitted sound into the structure is reduced at the high frequency domain. However, the sound insulation property of the structure is improved at the low frequency region when the radius of the shell is decreased.
机译:本文提出了一种分析模型,以在有限圆柱形壳体中嵌入多孔材料,以获得声音传输损耗系数。尽管仅考虑通过无限长的圆柱形来计算透射噪声的量的圆周模式,但是本研究除了周向上,还采用纵向模式,以分析基于以下的简单支撑的圆柱的纵传性能一阶剪切变形理论。为了实现这一目标,该结构浸入流体中并被声波激发。此外,声压和位移是以双傅里叶系列的形式开发的。由于这些系列包括无限模式,因此必须通过考虑足够的模式来终止该过程。因此,相应的收敛检查算法以一定长度,频率和半径的一些三维配置的形式使用。之后,绘制了一些图以确认本制定的准确性。在这些配置中,与本研究的所获得的声音传输丢失与无限的电流相比。结果表明,通过增加结构的长度,将结果接近无限壳体的声音传输损失。此外,提出了一种新的方法来示出不同频率的有限孔弹性圆筒的横向位移。基于结果,发现通过增强多孔弹性缸的长度,在高频域中减小了结构的透射声的量。然而,当壳体的半径减小时,结构的隔音性质在低频区域处得到改善。

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