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Effect of poroelastic material on vibroacoustic behavior of truncated conical shells

机译:多孔弹性材料对截圆壳植入的影响

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Acoustic transmission through single-and double-walled truncated conical shells lined with poroelastic material is analytically studied. The thin isotropic shells are excited by an oblique plane acoustic wave. The equations of motion of the shells are governed by Love's theory, and the wave propagation within the elastic porous material is described by an equivalent fluid model based on Biot's theory. To extract the acoustic pressures exerting on the surfaces of the conical shells, the shells are divided into several truncated segments which are narrow enough to be considered locally cylindrical. By employing a convergent power series solution the exact dynamic response of the conical shells is obtained. At first, the transmission loss results of this study are validated against those of previous works. Then, the results of various configurations of the single-walled conical shell lined with porous material are compared with those of its double-walled counterpart with equal mass. It is found that the single-walled shell lined with a porous layer is appropriate for sound insulation purposes at low frequencies below the first ring frequency, whereas, at higher frequencies, the double-walled sandwich shell provides better performance and more options for tuning the sound insulation. It is also shown that, except for low frequencies, the effects of the porous material and the method for bonding it to the facing shell are significant to improve the acoustic insulation ability. Finally, the influence of the porous layer thickness is investigated on the sound transmission loss. (C) 2021 Elsevier Masson SAS. All rights reserved.
机译:通过单壁和双壁截头圆锥形衬垫的声学传输进行了分析研究了孔弹性材料。薄的各向同性壳由倾斜平面声波激发。壳体运动方程受到爱的理论的管辖,并且弹性多孔材料内的波传播由基于Biot理论的等效流体模型来描述。为了提取施加在锥形壳体的表面上的声压,壳被分成几个截段,其足够窄以被认为是局部圆柱形的。通过采用会聚功率序列解决方案,获得了锥形壳的精确动态响应。首先,该研究的传输损耗结果针对以前的作品的验证。然后,将单壁锥形壳的各种构造的结果与具有相等质量相等的双壁对应物的单壁锥形壳。结果发现,具有多孔层的单壁壳适用于低频在第一环频率低于频率下的隔音目的,而在较高的频率下,双壁夹层外壳提供更好的性能和更多选择调整的选项隔音。还表明,除了低频之外,多孔材料的效果和将其粘合到面向壳体的方法是显着的,可以提高声学绝缘能力。最后,研究了在声音传输损耗上研究了多孔层厚度的影响。 (c)2021 Elsevier Masson SAS。版权所有。

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