Frequency-dependent Q simulation and viscoacoustic reverse-time migration based on the fractional Zener model

IF 3 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS Geophysics Pub Date : 2023-10-04 DOI:10.1190/geo2023-0258.1
Yabing Zhang, Hejun Zhu, Yang Liu, Tongjun Chen
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Abstract

Seismic attenuation is a basic physical property of the Earth, which significantly affects the characteristics of seismic wavefields. Accurately simulating wave propagation in the Earth is essential to image subsurface structures. Some prevailing methods (e.g., the standard linear solid and fractional Laplacian equation) to describe seismic wave propagation in attenuating media are mainly based on the constant- Q model (CQM), which is valid at room temperature and pressure. However, laboratory measurements suggest that the quality factor Q is a function of frequencies in some regions. To simulate the frequency-dependent Q effect, we derive a viscoacoustic wave equation from the stress-strain relationship of the fractional Zener model (FZM) with variable fractional orders. During the implementation, we separate the real and imaginary parts of the modulus and introduce a low-rank decomposition method to solve the FZM equation. Since the amplitude dissipation and phase dispersion are decoupled, we establish a compensated reverse-time migration ( Q-RTM) algorithm to mitigate adverse effects caused by seismic attenuation and improve the quality of seismic migration in frequency-dependent attenuating media. A two-layer and the BP gas chimney models are used to perform Q-RTM tests. A low-pass filter with a Tukey window function is applied to suppress numerical instability during the compensation. Numerical results demonstrate that the proposed FZM Q-RTM approach can produce high-resolution images with corrected reflector positions and amplitudes. Because the CQM equation ignores the frequency dependence of Q, it may lead to over-compensation in Q-RTM.
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基于分数齐纳模型的频率相关Q模拟和粘声逆时偏移
地震衰减是地球的一种基本物理性质,它对地震波场的特征有重要影响。准确模拟波在地球上的传播对地下结构成像至关重要。常用的描述地震波在衰减介质中的传播的方法(如标准线性固体方程和分数阶拉普拉斯方程)主要是基于恒定Q模型(CQM),该模型在室温和常压下有效。然而,实验室测量表明,在某些区域,质量因子Q是频率的函数。为了模拟频率相关的Q效应,我们从变分数阶的分数齐纳模型(FZM)的应力-应变关系中导出了粘声波方程。在实现过程中,我们分离了模量的实部和虚部,并引入了一种低秩分解方法来求解FZM方程。由于振幅耗散和相位色散是解耦的,我们建立了一种补偿逆时偏移(Q-RTM)算法,以减轻地震衰减带来的不利影响,提高频率相关衰减介质中地震偏移的质量。采用双层模型和BP燃气烟囱模型进行了Q-RTM测试。在补偿过程中,采用带Tukey窗函数的低通滤波器抑制数值不稳定性。数值结果表明,本文提出的FZM Q-RTM方法可以得到校正后反射面位置和振幅的高分辨率图像。由于CQM方程忽略了Q的频率依赖性,可能导致Q- rtm中的过补偿。
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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来源期刊
Geophysics
Geophysics 地学-地球化学与地球物理
CiteScore
6.90
自引率
18.20%
发文量
354
审稿时长
3 months
期刊介绍: Geophysics, published by the Society of Exploration Geophysicists since 1936, is an archival journal encompassing all aspects of research, exploration, and education in applied geophysics. Geophysics articles, generally more than 275 per year in six issues, cover the entire spectrum of geophysical methods, including seismology, potential fields, electromagnetics, and borehole measurements. Geophysics, a bimonthly, provides theoretical and mathematical tools needed to reproduce depicted work, encouraging further development and research. Geophysics papers, drawn from industry and academia, undergo a rigorous peer-review process to validate the described methods and conclusions and ensure the highest editorial and production quality. Geophysics editors strongly encourage the use of real data, including actual case histories, to highlight current technology and tutorials to stimulate ideas. Some issues feature a section of solicited papers on a particular subject of current interest. Recent special sections focused on seismic anisotropy, subsalt exploration and development, and microseismic monitoring. The PDF format of each Geophysics paper is the official version of record.
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