Journal of Jilin University(Earth Science Edition) ›› 2017, Vol. 47 ›› Issue (4): 1268-1277.doi: 10.13278/j.cnki.jjuese.201704302

Previous Articles     Next Articles

Precision Analysis of 3D Electromagnetic Field Numerical Modeling Based on Quasi-Linear Integral Equation Method

Liu Yongliang, Li Tonglin, Zhu Cheng, Guan Zhenwei, Su Xiaobo   

  1. College of GeoExploration Sciences and Technology, Jilin University, Changchun 130026, China
  • Received:2016-11-03 Online:2017-07-26 Published:2017-07-26
  • Supported by:
    Supported by National Deep State Detection Technology and the Experimental Research on Special(SinoProbe-03-05) and National Major Scientific Instruments and Equipment Development Projects(2011YQ05006009)

Abstract: The accuracy and the application scope of quasi-linear approximation methods, including scalar quasi-linear approximation, diagonal quasi-linear approximation, quasi-analytic approximation and localized quasi-linear approximation, are still a relatively misty concept in large-scale three-dimensional data inversion. In the paper, we implemented three-dimensional numerical simulation based on these approximation methods. By forward modeling,we systematically compared the accuracy of simulation results, and constrained the range of applications of these methods. Theoretical results show that: The diagonal quasi-linear approximation method has the highest accuracy and the widest range of applications among these methods and can give accurate results when electrical resistivity changes within 3-4 orders of magnitude; The accuracy of the quasi-analytical approximation method is a bit lower than that of the diagonal quasi-linear approximation method, and is suitable for calculating the geoelectrical model whose conductivity contrast between abnormal and background is roughly a few times to a hundred times; The accuracy of scalar quasi-linear approximation method and localized quasi-linear approximation method is the lowest, and they are only able to be used to calculate the geoelectric model of anomalous conductivity and background conductivity ratio of roughly tens of times.

Key words: quasi-linear approximation, quasi-analytic approximation, localized quasi-linear approximation, accuracy comparison

CLC Number: 

  • P631.3
[1] Born M. Optic[M]. New York: Springer,1933.
[2] Berdichevsky M N, Zhdanov M S. Advanced Theory of Deep Geomagnetic Sounding[M]. Amsterdam: Elsevier Science Publishers, 1984.
[3] Torres-Verdin C, Habashy T M. Rapid 2.5-Dimen-sional Forward Modeling and Inversion via a New Nonlinear Scattering Approximation[J]. Radio Science, 1994, 29(4): 1051-1079.
[4] Torres-Verdin C, Habashy T M. A Two-Step Linear Inversion of Two-Dimensional Electrical Conductivity[J]. IEEE Transactions on Antennas & Propagation,1995: 43(4):405-415.
[5] Zhdanov M S, Fang S. Quasi-Linear Approximation in 3-D Electromagnetic Modeling[J]. Geophysics,1996, 61(3): 646-665.
[6] Zhdanov M S, Fang S. Three-Dimensional Quasi-Linear Electromagnetic Inversion[J]. Radio Sci, 1996, 31(4): 741-754.
[7] Zhdanov M S, Hursán G. 3D Electromagnetic Inversion Based on Quasi-Analytical Approximation[J]. Inverse Problems, 2000, 16(5): 1297–1322.
[8] Zhdanov M S, Tartaras E. Three-Dimensional Inversion of Multitransmitter Electromagnetic Data Based on the Localized Quasi-Linear Approximation[J]. Geophys J Int, 2002, 148(3): 506-519.
[9] Ueda T, Zhdanov M S. Fast Numerical Modeling of Multitransmitter Electromagnetic Data Using Multigrid Quasi-Linear Approximation[J]. IEEE Transactions on Geoscience and Remote Sensing, 2006, 44(6): 1428-1434.
[10] 孙建国. 高频渐近散射理论及其在地球物理场数值模拟与反演成像中的应用:研究历史与研究现状概述以及若干新进展[J].吉林大学学报(地球科学版),2016,46(4):1231-1259. Sun Jianguo. High-Frequency Asymptotic Scattering Thoeries and Their Application in Numerical Modeling and Imaging of Geophysical Fields: An Overview of the Research History and the State-of-the-Art, and Some New Developments[J]. Journal of Jilin University (Earth Science Edition), 2016, 46(4): 1231-1259.
[11] 王伯年, 李过房, 曹伟武. 爱因斯坦求和约定的推广[J]. 上海理工大学学报, 2003, 25(1): 5-7. Wang Bonian, Li Guofang, Cao Weiwu. On the Extension of Einstein's Summation Convention[J]. Journal of University of Shanghai for Science and Technology, 2003, 25(1): 5-7.
[12] 李建平. 带地形的三维复电阻率电磁场正反演研究[D]. 长春: 吉林大学, 2008. Li Jianping. Research on Electromagnetic Modeling of 3D Complex Resistivity with Topography [D]. Changchun: Jilin University, 2008.
[1] Tu Junshan, Chen Hui, Deng Juzhi, Chen Kang, Li Yan, Yu Hui.  Influence of Dam on High-Density Electrical Methods and Correction Techniques [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(3): 1013-1025.
[2] Cui Yang, Liu Yang, Li Peng, Liu Lu, Chen Jiawei. Threshold Denoising Method for Marine Controlled-Source Electromagnetic Dipole Vibration Noise in Time-Frequency Domain [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(3): 1038-1050.
[3] Zhang Yangyang, Du Wei.

Adaptive Finite Element Method for Audio-Frequency Magnetotelluric Forward Modeling Based on Super Convergent Patch Recovery [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(2): 673-683.

[4] Liu Jie, Liu Haifei, Li Xing, Zhao Yingjie, Zhang Yuhao, Li Xiaoqiang, Liu Jianxin. 3D Electrical Resistivity Tomography for Restricted Observation Sites [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(4): 1309-1320.
[5] Sun Xudong, Ma Juju, Ling Jiaxuan, Yang Huajun, Ma Qiang, Li Kun. Characteristics of Direct Current Response over Intrusive Rock Models [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(4): 1321-1335.
[6] Long Gang, Shen Jinsong, Su Zhaoyang, Ran Shang. Time Domain Electromagnetic Response Simulation and Characteristic Analysis of Electroanisotropic Seafloor Massive Sulfide Deposits [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(1): 274-288.
[7] Lei Songda, Wang Xianxiang, Liu Suiming. Three-Dimensional Response Characteristics of Transient Electromagnetic Method with Electrical Sources in Shallow Sea Areas Under Complex Geological Conditions [J]. Journal of Jilin University(Earth Science Edition), 2024, 54(3): 1016-1030.
[8] Gu Guanwen, Wang Shunji, Li Tonglin, Wu Ye, Xu Zhihe. Influence of Different Power Supply Direction Excitation on Three-Dimensional Induced Polarization Exploration Effect with  #br# Central Gradient Array of Multi-Group Power Supply Pole Distance Combination#br# [J]. Journal of Jilin University(Earth Science Edition), 2024, 54(1): 292-309.
[9] . [J]. Journal of Jilin University(Earth Science Edition), 2022, 52(4): 1338-.
[10] . [J]. Journal of Jilin University(Earth Science Edition), 2022, 52(4): 1314-.
[11] . [J]. Journal of Jilin University(Earth Science Edition), 2022, 52(4): 1328-.
[12] Ding Chao, Xie Yangbo, Zhang Jiahao, Xiong Zhiguo, Ma Xiaomei, Yuan Xiang, Zhang Lei, Fang Shi. Imaging the Ground Leakage Channel of SAGD Based on Three-Dimensional Electrical Resistivity Tomography#br# [J]. Journal of Jilin University(Earth Science Edition), 2022, 52(6): 2021-2033.
[13] Song Wenpeng, Li Jing, Xiong Hongqiang, Zhang Ling, Wang Yanlong, Liu Zhongfu. Imaging of Chang’e-4 Lunar Penetrating Radar Data and Regolith Structure and Stratigraphy Interpretation#br# [J]. Journal of Jilin University(Earth Science Edition), 2022, 52(6): 2051-2059.
[14] Ye Qing, Wang Xiao, Du Xuebin, Xie Tao, Fan Ye, Zhou Zhengui, Liu Gaochuan.

Research Progress of Seismic Underground Geo-Resistivity in China [J]. Journal of Jilin University(Earth Science Edition), 2022, 52(3): 669-683.

[15] Xu Zhengyu , Fu Nengyi, Zhou Jie, Fu Zhihong. Comparison of Nonlinear Optimization Inversion Algorithms of Transient Electromagnetic Method [J]. Journal of Jilin University(Earth Science Edition), 2022, 52(3): 744-753.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] You Minxin,Liu Jianmin. Application Status and Progress of Isotopic Geochemistry in Research of Emeishan Large Igneous Province (ELIP)[J]. Journal of Jilin University(Earth Science Edition), 2014, 44(4): 1231 -1243 .
[2] YANG Chun-mei, LI Hong-qi,LU Da-wei,ZHANG Fang-li,GAO Yuan,SHAO Ying-chao. The Relationship Between Rock Resistivity and Water Saturation in WaterDriveOil and OilDriveWater Process[J]. J4, 2005, 35(05): 667 -671 .
[3] ZHU Hong-chen,ZHANG Jiong-fei,QUAN Heng. Two Stages of Mesozoic Lithogenesis and Mineralization in Daxing’anling Mountains[J]. J4, 2005, 35(04): 436 -0442 .
[4] ZHU Jian-wei, ZHAO Gang, LIU Bo, GUO Wei, CHENG Jun. Identification Technology and It’s Application of Well-Logging About Oil Shale[J]. J4, 2012, 42(2): 289 -295 .
[5] CHEN Li, LIANG Hai-an,ZHANG Wen-juan,RONG Fan. Application of Fuzzy Mathematics in Division of Engineering Geo-Environment of Cities-An Example of Fushun City[J]. J4, 2008, 38(5): 837 -0840 .
[6] GAO Gui-mei,SU Ke,WANG Wen-ying,GAN Shu-cai,LIU Zhao-jun. Study on Rare Earth and Trace Elements in Oil Shale Samples, Huadian, Jilin Province[J]. J4, 2006, 36(6): 974 -0979 .
[7] WU Kong-yun,JIANG Zhong-cheng,YE Ye. Influence of Different Plant Communities On Erosion Rates of Limestone Rock Blocks[J]. J4, 2007, 37(5): 967 -0971 .
[8] ZHOU Yan-zhang, CHI Bao-ming, LIU Zhong-pei. Mode of Structural Control about Groundwater Pour-in Mechanism in Xiadian Gold Deposits in Shandong Province[J]. J4, 2008, 38(2): 255 -0260 .
[9] ZHANG Yuan, LIU Lian-deng,SUN Jing-gui,CHEN Guo-hua,ZHANG Hong-xi,YAN Fu-chuan, YANG Kai-chun. Two Phase Overprinting Mineralization in Huangbuling Gold Deposit in Northwestern Jiaodong Peninsula[J]. J4, 2008, 38(1): 21 -0026 .
[10] LU Cheng-peng, SHU Long-cang, YUAN Li-bo, ZHANG Rong-rong, HUANG Bi-juan, WANG Bin-bin. Determination of Hydrogeologic Parameters of Karst Aquifer Based on Tracer Test[J]. J4, 2009, 39(4): 717 -721 .