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Dynamic Viscoelastic Effects on Sound Wave Diffraction by Spherical and Cylindrical Shells Submerged in and Filled with Viscous Compressible Fluids

机译:浸没并充满粘性可压缩流体的球壳和圆柱壳对声波衍射的动态粘弹性效应

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An analysis for sound scattering by fluid-filled spherical and cylindrical viscoelastic shells immersed in viscous fluids is outlined. The dynamic viscoelastic properties of the scatterer and the viscosity of the surrounding and core fluids are rigorously taken into account in the solution of the acoustic scattering problem. The novel features of Havriliak-Negami model for viscoelastic material dynamic behaviour description along with the appropriate wave-harmonic field expansions and the pertinent boundary conditions are employed to develop a closed-form solution in form of infinite series. Subsequently, the associated acoustic field quantities such as the scattered far-field pressure directivity pattern, form function amplitude, transmitted intensity ratio, and acoustic force magnitude are evaluated for given sets of medium physical properties. Numerical results clearly indicate that in addition to the traditional fluid viscosity-related mechanisms, the dynamic viscoelastic properties of the shell material as well as its thickness can be of major significance in sound scattering. Limiting cases are examined and fair agreements with well-known solutions are established.
机译:概述了通过浸没在粘性流体中的充满流体的球形和圆柱形粘弹性壳对声音散射的分析。在解决声散射问题时,严格考虑了散射体的动态粘弹性和周围流体与核心流体的粘度。利用Havriliak-Negami模型描述粘弹性材料动力学行为的新颖特征,以及适当的波谐场扩展和相关的边界条件,可以开发出无穷级数形式的闭式解。随后,针对给定的一组介质物理属性,评估了相关的声场量,例如散射的远场压力方向图,形状函数幅度,透射强度比和声力大小。数值结果清楚地表明,除了传统的与流体粘度有关的机理外,壳材料的动态粘弹性和厚度对声散射也具有重要意义。检查了极限情况,并建立了与知名解决方案的公平协议。

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