用广义 R/T 系数法计算和分析层状粘弹性垂直横向各向同性介质中的面波频散和衰减

Shichuan Yuan, Lei Pan, Caiwang Shi, Xianhai Song, Xiaofei Chen
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引用次数: 0

摘要

在本研究中,我们提出了一种系统而有效的方法,即广义反射/透射(R/T)系数法的扩展版,用于计算层状粘弹性-垂直横向各向同性(VTI)介质中的相位-速度(${c}_r$)频散曲线、衰减系数($\alpha $)曲线、瑞利波和爱波的特征函数以及瑞利波的椭圆度。为确定面波的复值模态解(即复波长 $k = {\omega / {{c_{r}} - i\alpha }}$),设计了根搜索法与局部优化法相结合的数值方案。由于近地表沉积地质环境是典型的粘弹性-VTI 介质,因此将其作为模型示例。除了各向异性-粘弹性(AV)介质,我们的算法还可以通过重新设置相应的参数来计算各向同性-弹性(IE)、各向同性-粘弹性(IV)和各向异性-弹性(AE)介质的面波。使用六层半空间模型和这四种介质,我们通过将模态解与其他方法的模态解进行对比,验证了我们算法的正确性。在四层半空间模型中,通过比较 IE、IV、AE 和 AV 介质的结果,我们详细分析了速度各向异性、粘弹性和衰减各向异性对瑞利波和爱波的频散和衰减特性的影响。我们的研究可以为考虑介质各向异性和/或粘弹性的面波成像提供理论依据和有用工具,从而有可能更好地研究固体地球的内部结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computation and analysis of surface wave dispersion and attenuation in layered viscoelastic-vertical transversely isotropic media by the generalized R/T coefficient method
In this study, we propose a systematic and effective method, that is, an extended version of the generalized reflection/transmission (R/T) coefficient method, for computing the phase-velocity (${c}_r$) dispersion curves, attenuation coefficient ($\alpha $) curves, and eigenfunctions of both Rayleigh and Love waves as well as the ellipticity of Rayleigh waves in layered viscoelastic-vertical transversely isotropic (VTI) media. The numerical scheme of combining the root-searching method with the local optimization method is designed for determining the complex-valued modal solutions (i.e., complex wavenumber $k = {\omega / {{c_{r}} - i\alpha }}$) of surface waves. The near-surface sedimentary geological environment is taken as the model example because it is typical viscoelastic-VTI media. Besides the anisotropic-viscoelastic (AV) media, our algorithm can also compute surface waves in isotropic-elastic (IE), isotropic-viscoelastic (IV), and anisotropic-elastic (AE) media by resetting the corresponding parameters. Using the six-layer half-space models and in these four media, we verify the correctness of our algorithm by benchmarking the modal solutions against those from other methods. In the four-layer half-space model, by comparing the results of IE, IV, AE, and AV media, we analyze the effects of velocity anisotropy, viscoelasticity and attenuation anisotropy on the dispersion and attenuation characteristics of both Rayleigh and Love waves in detail. Our study can provide a theoretical basis and useful tool for surface wave imaging considering the anisotropy and/or viscoelasticity of the medium, which has the potential to better investigate the solid Earth's internal structure.
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