3D transient electromagnetic inversion based on explicit finite-difference forward modeling

被引:0
|
作者
Li, Fei [1 ]
Tan, Qiang [2 ]
Wen, Lai-Fu [3 ]
Huang, Dan [2 ]
机构
[1] North China Inst Sci & Technol, Key Lab Mine Disaster Prevent & Control, Beijing 101601, Peoples R China
[2] Northwest Inst Nucl Technol, Xian 710024, Peoples R China
[3] Hebei Univ Engn, Sch Earth Sci & Engn, Handan 056038, Hebei, Peoples R China
关键词
3D inversion; Transient electromagnetic method; Numerical modeling; Inverse theory; Explicit method; 3-D INVERSION; EARTH;
D O I
10.1007/s11770-023-1028-9
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
With the development of computers and forward modeling techniques, three-dimensional (3D) transient electromagnetic inversions are being developed. However, there are few 3D transient electromagnetic inversions based on explicit forward modeling methods. Therefore, in this study, we propose a 3D transient electromagnetic inversion method based on explicit finite-difference forward modeling. For forward modeling, we first calculate the whole-space initial field excited by magnetic dipole sources at an initial time after the current is switched off. Then, we step Maxwell's equations in time using the modified DuFort-Frankel method and staggered grids. For inversion, we employ the least squares optimization method and test it using synthetic and field data. Using synthetic data, we invert the model of a conductivity brick in a half-space. The results reveal that the conductivity brick is well recovered. Inversion results using the field data are consistent with known geological conditions. The synthetic and field examples demonstrate that the inversion method based on explicit finite-diff erence forward modeling is reliable.
引用
收藏
页码:310 / 315
页数:6
相关论文
共 50 条
  • [41] 3D forward modeling and inversion of electromagnetics and applications - Introduction
    Hu, Xiangyun
    Huang, Qinghua
    Farquharson, Colin
    Slob, Evert
    Spitzer, Klaus
    GEOPHYSICS, 2018, 83 (02) : WBI - WBI
  • [42] Transient-electromagnetic finite-difference time-domain earth modeling over steel infrastructure
    Commer, Michael
    Hoversten, G. Michael
    Um, Evan Schankee
    GEOPHYSICS, 2015, 80 (02) : E147 - E162
  • [43] Comparison of 3D controlled-source electromagnetic forward modeling based on the nodal finite element and the edge-based finite element
    Tang W.
    Liu J.
    Ye Y.
    Zhang H.
    Tang, Wenwu (tang_wenwu@sina.com), 2018, Science Press (53): : 617 - 624
  • [44] A FINITE-DIFFERENCE, TIME-DOMAIN SOLUTION FOR 3-DIMENSIONAL ELECTROMAGNETIC MODELING
    WANG, T
    HOHMANN, GW
    GEOPHYSICS, 1993, 58 (06) : 797 - 809
  • [45] 3-DIMENSIONAL ELECTROMAGNETIC MODELING USING FINITE-DIFFERENCE EQUATIONS - THE MAGNETOTELLURIC EXAMPLE
    MACKIE, RL
    SMITH, JT
    MADDEN, TR
    RADIO SCIENCE, 1994, 29 (04) : 923 - 935
  • [46] 3D Fourier finite-difference common azimuth depth migration
    Zhang, LB
    Hua, BL
    Calandra, H
    Rector, JW
    Hoversten, M
    JOURNAL OF SEISMIC EXPLORATION, 2006, 14 (04): : 287 - 294
  • [47] 3D finite-difference synthetic acoustic log in cylindrical coordinates
    Pissarenko, D.
    Reshetova, G.
    Tcheverda, V.
    JOURNAL OF COMPUTATIONAL AND APPLIED MATHEMATICS, 2010, 234 (06) : 1766 - 1772
  • [48] A 3D frequency-domain electromagnetic solver employing a high order compact finite-difference scheme
    Vilanakis, N. D.
    Economou, N.
    Mathioudakis, E.
    Vafidis, A.
    COMPUTERS & GEOSCIENCES, 2023, 178
  • [49] 3D finite-difference synthetic acoustic logging in cylindrical coordinates
    Pissarenko, D.
    Reshetova, G. V.
    Tcheverda, V. A.
    GEOPHYSICAL PROSPECTING, 2009, 57 (03) : 367 - 377
  • [50] 3D elastic waveform modeling with an optimized equivalent staggered-grid finite-difference method
    Qiang Zou
    Jian-Ping Huang
    Peng Yong
    Zhen-Chun Li
    Petroleum Science, 2020, (04) : 967 - 989