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首页> 外文期刊>The Journal of the Acoustical Society of America >Fast compressional wave attenuation and dispersion due to conversion scattering into slow shear waves in randomly heterogeneous porous media
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Fast compressional wave attenuation and dispersion due to conversion scattering into slow shear waves in randomly heterogeneous porous media

机译:在随机异质多孔介质中,由于将转换散射转换成慢剪切波,导致快速压缩波衰减和色散

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摘要

Within the viscosity-extended Biot framework of wave propagation in porous media, the existence of a slow shear wave mode with non-vanishing velocity is predicted. It is a highly diffusive shear mode wherein the two constituent phases essentially undergo out-of-phase shear motions (slow shear wave). In order to elucidate the interaction of this wave mode with propagating wave fields in an inhomogeneous medium the process of conversion scattering from fast compressional waves into slow shear waves is analyzed using the method of statistical smoothing in randomly heterogeneous poroelastic media. The result is a complex wave number of a coherent plane compressional wave propagating in a dynamic-equivalent homogeneous medium. Analysis of the results shows that the conversion scattering process draws energy from the propagating wave and therefore leads to attenuation and phase velocity dispersion. Attenuation and dispersion characteristics are typical for a relaxation process, in this case shear stress relaxation. The mechanism of conversion scattering into the slow shear wave is associated with the development of viscous boundary layers in the transition from the viscosity-dominated to inertial regime in a macroscopically homogeneous poroelastic solid.. [DOI: 10.1121/1.3560918]
机译:在多孔介质中波传播的粘度扩展的比奥框架内,预测了不消失速度的慢剪切波模式的存在。这是一种高度扩散的剪切模式,其中两个组成相基本上经历异相剪切运动(慢剪切波)。为了阐明该波模与非均质介质中传播波场的相互作用,使用统计非均匀随机孔隙弹性介质方法,分析了从快速压缩波到慢剪切波的转换散射过程。结果是在动态等效均质介质中传播的相干平面压缩波的复波数。结果分析表明,转换散射过程从传播波中吸收能量,因此导致衰减和相速度色散。衰减和色散特性是松弛过程的典型特征,在这种情况下为剪切应力松弛。转换为慢剪切波的散射机制与宏观均匀的多孔弹性固体中从黏性支配态到惯性态转变中粘性边界层的发展有关。[DOI:10.1121 / 1.3560918]

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