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Sound transmission through a thick-walled FGM piezo-laminated cylindrical shell filled with and submerged in compressible fluids

机译:通过厚壁的FGM压电层压圆柱壳进行声音传输,圆柱壳充满并浸没在可压缩流体中

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Estimation of sound transmission loss (TL) due to the piezoelectric effects, as an attenuation of acoustic waves, is studied for a thick-walled piezo-composite cylindrical shell excited by an oblique incident plane wave. The cylinder is filled with and submerged in an acoustic media. The three-dimensional (3D) exact theory of elasticity and piezoelasticity are engaged to model the cylindrical shell, while the classical Helmholtz equation governs the propagation of waves through the internal cavity and external surrounding fluid. A state space method, as well as the transfer matrix technique is utilized to describe the deformation and stress in the cylindrical shell. TL is calculated by exact integration over the shell's outer surface. The validity of the current analytical solutions is cross-checked with various data from the simplified case found in the relevant literature as well as a finite element package known as comsat. MULTIPHYSICS. Parameter studies are conducted to investigate the effects of piezoelectric material properties, piezoelectric polarization direction, shell thickness ratio, electrical boundary conditions and functionally graded piezoelectric material (FGPM) on the sound transmission loss due to the piezoelectricity. New results and findings provide guidance of piezoelectric coupled with thick shell design for passive wave absorption.
机译:对于由斜入射平面波激发的厚壁压电复合圆柱壳,研究了由于压电效应引起的声传输损耗(TL)的估计,作为声波的衰减。圆柱体充满并浸没在声学介质中。运用三维(3D)精确的弹性和压电弹性理论对圆柱壳进行建模,而经典的亥姆霍兹方程则控制着通过内部空腔和外部周围流体的波传播。利用状态空间方法以及传递矩阵技术来描述圆柱壳中的变形和应力。 TL是通过壳外表面的精确积分计算得出的。当前分析解决方案的有效性与相关文献中的简化案例以及称为comsat的有限元软件包中的各种数据进行了交叉检验。多物理场。进行参数研究以研究压电材料特性,压电极化方向,壳厚度比,电边界条件和功能梯度压电材料(FGPM)对由于压电引起的声传输损耗的影响。新的结果和发现为无源波吸收的压电与厚壳设计相结合提供了指导。

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