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首页> 外文期刊>The Journal of the Acoustical Society of America >Far-field scattering model for wave propagation in random media
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Far-field scattering model for wave propagation in random media

机译:随机介质中波传播的远场散射模型

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A simple approximate model is developed for ultrasonic wave propagation in a random elastic medium. The model includes second order multiple scattering and is applicable in all frequency ranges including geometric. It is based on the far field approximation of the reference medium Green's function and simplifications of the mass operator in addition to those of the first smooth approximation. In this approximation, the dispersion equation for the perturbed wave number is obtained; its solution yields the dispersive ultrasonic velocity and attenuation coefficients. The approximate solution is general and is suitable for nonequiaxed grains with arbitrary elastic symmetry. For equiaxed cubic grains, the solution is compared with the existing second order models and with the Born approximation. The comparison shows that the obtained solution has smaller error than the Born approximation and shows reasonably well the onset of multiple scattering and the applicability limit of the Born approximation at high frequency. The perturbed wave number in the developed model does not depend explicitly on the crystallite elastic properties even for arbitrary crystallographic symmetry; it depends on two nondimensional scattering elastic parameters and the macroscopic ultrasonic velocity (those are dependent on the crystallite moduli). This provides an advantage for potential schemes for inversion from attenuation to material microstructure. (C) 2015 Acoustical Society of America.
机译:针对超声波在随机弹性介质中的传播,开发了一种简单的近似模型。该模型包括二阶多重散射,适用于包括几何在内的所有频率范围。它是基于参考介质Green函数的远场近似以及质量算子的简化以及第一平滑近似的简化。在这种近似下,获得了扰动波数的色散方程。它的解产生了分散的超声速度和衰减系数。近似解是通用的,适用于具有任意弹性对称性的非等轴晶粒。对于等轴立方晶格,将该解与现有的二阶模型和Born近似进行比较。比较表明,所获得的解比Born近似具有较小的误差,并且在高频下合理地显示了多次散射的开始以及Born近似的适用范围。在开发的模型中,即使对于任意的晶体对称性,微扰波数也不明显取决于微晶的弹性特性。它取决于两个无量纲的散射弹性参数和宏观的超声速度(取决于微晶模量)。这为从衰减到材料微结构的反演的潜在方案提供了优势。 (C)2015年美国声学学会。

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