高频表面波方法的新发现

IF 1.6 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
J. Xia, Lingli Gao, Yudi Pan, Chao Shen, Xiaofei Yin
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引用次数: 13

摘要

多通道表面波分析(MASW)通过分析高频瑞利波来确定近表面剪切(S)波速。近20年来,该方法以其无创、无损、高效、低成本等优点,越来越受到近地表地球物理和岩土工程界的重视。它们被近地表地球物理学界视为未来最有前途的技术之一。本文介绍了中国地质大学(武汉)近地表地球物理研究组近年来在高频表面波传播和应用方面的一些研究成果。非几何波只存在于近地表物质中,尤其是松散沉积物中。这对快速准确地估计地表横波速度具有重要意义。研究表明,非几何波是漏波,具有弥散性。在将漏波能量作为基波或高模瑞利波处理时,漏波表面波可能引起误识别。这种错误的识别将导致错误的反演结果。通过分离基模瑞利波和高模瑞利波后得到瑞利波格林函数,验证了虚拟震源法在瑞利波测量中的可行性,大大降低了现场工程成本。与瑞利波相比,Love波多通道分析(MALW)涉及的参数更少,使得Love波色散曲线比瑞利波更简单。因此,Love波的反演更加稳定,非唯一性程度降低。爱波能量的图像通常比瑞利波的图像更清晰,分辨率更高。这使得选择爱波相速度更容易和更准确。利用雅可比矩阵分析表面波波长与穿透深度的关系表明:对于相同波长的基模,Rayleigh波的穿透深度是Love波的1.3~1.4倍,但在更高的模态下,两者的穿透深度相似。在时域Love-wave波形反演方面也做了一些尝试。我们根据Love波的分辨率将地下模型划分为不同大小的块。我们通过反褶积去除震源效应,并通过更新每个区块的横波速度来拟合观测波形,得到合适的地下横波速度模型。该方法不需要水平分层模型假设,可适用于任何二维介质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New findings in high-frequency surface wave method
Multi channel Analysis of Surface Waves (MASW) analyzes high-frequency Rayleigh waves to determine near-surface shear (S)-wave velocities. This method is getting increasingly attention in the near-surface geophysics and geotechnique community in the past 20 years because of its non-invasive, non-destructive, efficient, and low-cost advantages. They are viewed by near-surface geophysics community as one of most promise techniques in the future. We introduce some research results about propagation and applications of high-frequency surface waves proposed by near-surface geophysical research group at China University of Geosciences (Wuhan) in recent years. Non-geometric wave exists uniquely in near-surface materials, especially in unconsolidated sediments. It is valuable for a quick and accurate estimation of S-wave velocity of the surface layer. Our study shows that non-geometric waves are leaky waves and they are dispersive. Leaky surface wave could cause misidentification when treating the leaky-wave energy as fundamental or higher modes Rayleigh wave. Such misidentification will result in wrong inversion results. By obtaining Rayleigh-wave Green's function after separating fundamental- and higher-mode Rayleigh waves, we verify the feasibility of virtual source method in Rayleigh-wave survey, which could tremendously decreases the cost of field works. Compared to Rayleigh waves, a fewer parameters are involved in Multichannel Analysis of Love Waves (MALW), which makes Love-wave dispersion curves simpler than Rayleigh waves. As a result, inversion of Love waves is more stable and the degree of non-uniqueness is reduced. Images of Love-wave energy are usually sharper and of higher resolution than those from Rayleigh waves. This make picking Love-wave phase velocities much easier and more accurate. Analysis on relationship between surface-wave wavelength and penetrating depth by using Jacobian matrix shows that: as for fundamental mode with the same wavelength, Rayleigh wave can see 1.3~1.4 times deeper than Love waves, however, their penetrating depths are similar for higher modes. We also make some attempts on time-domain Love-wave waveform inversion. We divide the subsurface model into different sizes of blocks according to resolution of Love waves. We remove the source effect by deconvolution, and achieve an appropriate subsurface S-wave velocity model via updating S-wave velocity of each block to fit observed waveforms. This method does not need horizontal-layered-model assumption, and can be applied to any kind of 2D media.
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来源期刊
地球物理学报
地球物理学报 地学-地球化学与地球物理
CiteScore
3.40
自引率
28.60%
发文量
9449
审稿时长
7.5 months
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