A porosity-based Biot model for acoustic waves in snow

R. Sidler
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引用次数: 24

Abstract

Phase velocities and attenuation in snow can not be explained by the widely used elastic or viscoelastic models for acoustic wave propagation. Instead, Biot's model of wave propagation in porous materials should be used. However, the application of Biot's model is complicated by the large property space of the underlying porous material. Here the properties of ice and air as well as empirical relationships are used to define the properties of snow as a function of porosity. Based on these relations, phase velocities and plane wave attenuation of shear- and compressional-waves as functions of porosity or density are predicted. For light snow the peculiarity was found that the velocity of the first compressional wave is lower than the second compressional wave that is commonly referred to as the "slow" wave. The reversal of the velocities comes with an increase of attenuation for the first compressional wave. This is in line with the common observation that sound is strongly absorbed in light snow. The results have important implications for the use of acoustic waves to evaluate snow properties and to numerically simulate wave propagation in snow.
基于孔隙度的雪中声波Biot模型
雪中的相速度和衰减不能用广泛使用的声波传播的弹性或粘弹性模型来解释。相反,应该使用Biot的波在多孔材料中的传播模型。然而,由于底层多孔材料的性质空间较大,使得Biot模型的应用变得复杂。这里使用冰和空气的特性以及经验关系来定义雪的特性作为孔隙度的函数。在此基础上,预测了剪切波和压缩波的相速度和平面波衰减随孔隙度或密度的变化。对于小雪,发现第一纵波的速度低于第二纵波的速度,即通常所说的“慢”波。速度的反转伴随着第一纵波衰减的增加。这与通常观察到的声音在小雪中被强烈吸收是一致的。研究结果对利用声波评价雪的特性和数值模拟雪中的波传播具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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