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粘弹性圆柱体纵波和横波无量纲吸收系数的物理约束。

Physical constraints on the non-dimensional absorption coefficients of compressional and shear waves for viscoelastic cylinders.

作者信息

Mitri F G, Fellah Z E A

机构信息

Chevron, Area 52 Technology - ETC, Santa Fe, NM 87508, United States.

LMA, CNRS, UPR 7051, Aix-Marseille Univ., Centrale Marseille, F-13402 Marseille Cedex 20, France.

出版信息

Ultrasonics. 2017 Feb;74:233-240. doi: 10.1016/j.ultras.2016.11.001. Epub 2016 Nov 9.

Abstract

BACKGROUND

Normalized absorption coefficients for the longitudinal and shear waves in viscoelastic (polymer-type) materials, extracted from non-fictional experimental data showed anomalous effects, such as the generation of a negative radiation force (NRF) in plane progressive waves, negative energy absorption and extinction efficiencies and a scattering enhancement, not in agreement with energy conservation.

OBJECTIVE

The objective of this work is directed towards analyzing those anomalies from the standpoint of energy conservation. Physical conditions which demonstrate that the ratio of the normalized absorption coefficients cannot be of arbitrary value but depends on the ratio of the square of the compressional and shear wave speeds, are established and discussed.

METHOD

The necessary physical condition for the validity of the linear viscoelastic (VE) model for any passive (i.e. that does not generate energy) polymeric cylinder with an ultrasonic absorption of hysteresis-type submerged in a non-viscous fluid requires that the absorption efficiency be positive (Q>0) since there are no active radiating sources inside the core material. This condition imposes restrictions on the values attributed to the normalized absorption coefficients for the compressional and shear-wave wavenumbers for each partial-wave mode n. The forbidden values produce anomalous/unphysical NRF, negative absorption and extinction efficiencies, as well as an enhancement of the scattering efficiency using plane progressive waves, not in agreement with energy conservation.

RESULTS

Based on the partial wave series expansion method in cylindrical coordinates, numerical results for the radiation force, extinction, absorption and scattering energy efficiencies assuming plane progressive wave incidence are performed for three VE polymer cylinders immersed in a non-viscous host liquid (i.e. water) with particular emphasis on the shear-wave absorption coefficient, the dimensionless size parameter ka (where k is the wavenumber and a is the radius of the cylinder) and the partial-wave mode number n. Physical and mathematical conditions are established for the non-dimensional absorption coefficients of the longitudinal and shear waves for a cylinder (i.e. the 2D case) in terms of the sound velocities in the VE material. The physical condition for the spherical 3D case is also noted.

CONCLUSION

For passive materials, the physical conditions must be always satisfied to allow accurate computations of the acoustic radiation force, torque, and energy absorption, extinction and scattering efficiencies for VE cylinders having a hysteresis type of absorption (such as polymers and plastics), and submerged in a non-viscous fluid. The physical conditions must be always satisfied regardless of the shape of the incident field. They also serve to validate and verify experimental data for VE materials and test the accuracy of related numerical computations.

摘要

背景

从真实实验数据中提取的粘弹性(聚合物类型)材料中纵波和剪切波的归一化吸收系数显示出异常效应,例如平面行波中产生负辐射力(NRF)、负能量吸收和消光效率以及散射增强,这与能量守恒不一致。

目的

这项工作的目的是从能量守恒的角度分析这些异常现象。建立并讨论了表明归一化吸收系数的比值不能为任意值,而是取决于压缩波和剪切波速度平方之比的物理条件。

方法

对于任何浸没在非粘性流体中的具有滞后型超声吸收的被动(即不产生能量)聚合物圆柱体,线性粘弹性(VE)模型有效性的必要物理条件要求吸收效率为正(Q>0),因为核心材料内部没有有源辐射源。该条件对每个分波模式n的压缩波和剪切波波数的归一化吸收系数所赋予的值施加了限制。这些禁止值会产生异常/非物理的NRF、负吸收和消光效率,以及使用平面行波时散射效率的增强,这与能量守恒不一致。

结果

基于圆柱坐标系中的分波级数展开方法,对浸没在非粘性主体液体(即水)中的三个VE聚合物圆柱体进行了假设平面行波入射时的辐射力、消光、吸收和散射能量效率的数值计算,特别强调了剪切波吸收系数、无量纲尺寸参数ka(其中k是波数,a是圆柱体半径)和分波模式数n。根据VE材料中的声速,为圆柱体(即二维情况)的纵波和剪切波的无量纲吸收系数建立了物理和数学条件。还指出了球形三维情况的物理条件。

结论

对于被动材料,必须始终满足物理条件,以便准确计算具有滞后型吸收(如聚合物和塑料)且浸没在非粘性流体中的VE圆柱体的声辐射力、扭矩以及能量吸收、消光和散射效率。无论入射场的形状如何,都必须始终满足物理条件。它们还用于验证和核实VE材料的实验数据,并测试相关数值计算的准确性。

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