Complex Frequency Shifted Perfectly Matched Layer Boundary Conditions for Frequency-Domain Elastic Wavefield Simulations

被引:0
|
作者
Zhencong Zhao
Jingyi Chen
Minghua Xu
Xiaobo Liu
机构
[1] The University of Tulsa,Seismic Anisotropy Group, Department of Geosciences
[2] CCDC Geological Exploration & Development Research Institute,undefined
来源
Pure and Applied Geophysics | 2019年 / 176卷
关键词
Frequency-domain; finite-difference; elastic wave; CFS-PML; boundary conditions; free surface;
D O I
暂无
中图分类号
学科分类号
摘要
To absorb unwanted seismic reflections caused by the truncated boundaries, various absorbing boundary conditions have been developed for seismic numerical modeling in both time and frequency domains. Among the various types of perfectly matched layer (PML) boundary conditions, complex frequency shifted PML (CFS-PML) has attracted much attention in time-domain wavefield simulations because it can better handle evanescent and grazing waves. In this paper, we extend the CFS-PML boundary condition to frequency-domain finite-difference seismic modeling, which has several advantages over time-domain modeling including the convenient implementation of multiple sources and a straightforward extension of adding attenuation factors. A comparison with an analytical solution is used to investigate the validity of the proposed CFS-PML algorithm. CFS-PML shows better absorbing behavior than the classical PML boundary condition in our model tests. We further implement CFS-PML for seismic wavefield simulations in an elongated elastic model and a complex model (Marmousi-II) with a free surface boundary condition.
引用
收藏
页码:2529 / 2542
页数:13
相关论文
共 50 条
  • [1] Complex Frequency Shifted Perfectly Matched Layer Boundary Conditions for Frequency-Domain Elastic Wavefield Simulations
    Zhao, Zhencong
    Chen, Jingyi
    Xu, Minghua
    Liu, Xiaobo
    PURE AND APPLIED GEOPHYSICS, 2019, 176 (06) : 2529 - 2542
  • [2] Complex frequency-shifted multi-axial perfectly matched layer for frequency-domain seismic wavefield simulation in anisotropic media
    Zhao, Zhencong
    Chen, Jingyi
    GEOPHYSICAL PROSPECTING, 2019, 67 (05) : 1329 - 1344
  • [3] Frequency-domain elastic wavefield simulation with hybrid absorbing boundary conditions
    Zhao, Zhencong
    Chen, Jingyi
    Liu, Xiaobo
    Chen, Baorui
    JOURNAL OF GEOPHYSICS AND ENGINEERING, 2019, 16 (04) : 690 - 706
  • [4] Application of the complex frequency shifted perfectly matched layer absorbing boundary conditions in transient electromagnetic method modeling
    Li Zhan-Hui
    Huang Qing-Hua
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2014, 57 (04): : 1292 - 1299
  • [5] Perfectly matched layer boundary conditions for frequency-domain acoustic wave simulation in the mesh-free discretization
    Liu, Xin
    Liu, Yang
    Ren, Zhiming
    Li, Bei
    GEOPHYSICAL PROSPECTING, 2019, 67 (07) : 1732 - 1744
  • [6] Complex Frequency-Shifted Perfectly Matched Layers for 2.5D Frequency-Domain Marine Controlled-Source EM Field Simulations
    Li, Gang
    Zhang, Liang
    Goswami, Bedanta K.
    SURVEYS IN GEOPHYSICS, 2022, 43 (04) : 1055 - 1084
  • [7] Complex Frequency-Shifted Perfectly Matched Layers for 2.5D Frequency-Domain Marine Controlled-Source EM Field Simulations
    Gang Li
    Liang Zhang
    Bedanta K. Goswami
    Surveys in Geophysics, 2022, 43 : 1055 - 1084
  • [8] Choice of the perfectly matched layer boundary condition for frequency-domain Maxwell's equations solvers
    Shin, Wonseok
    Fan, Shanhui
    JOURNAL OF COMPUTATIONAL PHYSICS, 2012, 231 (08) : 3406 - 3431
  • [9] Choice of the Perfectly Matched Layer boundary condition for iterative solvers of the frequency-domain Maxwell's equations
    Shin, Wonseok
    Fan, Shanhui
    PHYSICS AND SIMULATION OF OPTOELECTRONIC DEVICES XX, 2012, 8255
  • [10] Curved perfectly matched layer in frequency domain
    Fontaine, V
    Aubourg, M
    Guillon, P
    INTERNATIONAL JOURNAL OF NUMERICAL MODELLING-ELECTRONIC NETWORKS DEVICES AND FIELDS, 2000, 13 (2-3) : 155 - 165