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Propagation and attenuation characteristics of Rayleigh waves induced due to irregular surface in liquid-saturated micropolar porous half-space

机译:液态饱和微基波多孔半空间中不规则表面引起的瑞利波的传播与衰减特性

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摘要

This paper presents a study designed to analyse the impact of corrugated interface on Rayleigh wave phase velocity and attenuation coefficient within the context of micropolar porous half-space lying under a non-viscous liquid layer. Following the fundamental equations of wave propagation given by Biot together with the suitable boundary conditions for a given geometry, the velocity equation in the complex form is derived which on further separation of the real and imaginary parts corresponds to the dispersion and attenuation equation, respectively. In order to illustrate the impact of porosity, micropolarity, undulation and position parameters on phase velocity and attenuation coefficient, the dispersion and attenuation curves are plotted with respect to the wave number by varying values of these parameters. For comparative studies, the graphs of these parameters have been plotted for two cases, one for a corrugated interface and the other one for a planar interface, and comparison of phase velocity and attenuation is made with the results obtained from the graphs. It is seen that phase velocity and attenuation are significantly influenced by wave number, presence of micropolarity, porosity and corrugated interface. Also we have obtained the important result that the waves propagate with higher velocity in a deep liquid layer.
机译:本文介绍了一个研究,旨在分析在非粘性液体层下的微基波多孔半空间的背景下对瑞利波阶段速度和衰减系数对瑞利波相速度和衰减系数的影响。在与给定几何形状的合适边界条件一起给定的波传播的基本方程之后,导出复杂形式的速度方程,该速度方程分别对应于分散和衰减方程的进一步分离。为了说明孔隙率,微光凝度,波动和位置参数对相速度和衰减系数的影响,通过改变这些参数的值相对于波数绘制色散和衰减曲线。对于比较研究,已经绘制了这些参数的图表,用于两种情况下,一个用于波纹接口,另一个用于平面界面,并且通过从图表获得的结果进行相速度和衰减的比较。可以看出,阶段速度和衰减受波数,存在的微聚,孔隙度和瓦楞界面的存在显着影响。此外,我们已经获得了在深液层中具有更高速度的波传播的重要结果。

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