Electromagnetic methods for mineral exploration in China: A review
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Zhenwei Guo | Xin Wu | Guoqiang Xue | Jianxin Liu | Xin Wu | Jianxin Liu | Zhenwei Guo | G. Xue
[1] M. Karaoulis,et al. Image-guided inversion of electrical resistivity data , 2014 .
[2] Guoqiang Xue,et al. Discovery of a Large-scale Porphyry Molybdenum Deposit in Tibet through a Modified TEM Exploration Method , 2012 .
[3] Zhan Ya. Deep electric structure beneath the intersection area of West Qinling orogenic zone with North-South Seismic tectonic zone in China , 2014 .
[4] Muhammad Younis Khan,et al. Quasi MT Inversion of Short-Offset Transient Electromagnetic Data , 2016, Pure and Applied Geophysics.
[5] T. Ritchie,et al. Mining, Environmental, Petroleum, and Engineering Industry Applications of Electromagnetic Techniques in Geophysics , 2005 .
[6] Q. Di,et al. Field testing of the surface electromagnetic prospecting system , 2017, Applied Geophysics.
[7] Yixian Xu,et al. TEM investigations of South Atlantic Ridge 13.2°S hydrothermal area , 2013, Acta Oceanologica Sinica.
[8] L. Xiu,et al. Inverse Synthetic Aperture Imaging of the Ground-Airborne Transient Electromagnetic Method with a Galvanic Source , 2015 .
[9] J. Coggon. Electromagnetic and electrical modeling by the finite element method , 1971 .
[10] Using SOTEM Method to Detect BIF Bodies Buried Under Very Thick and Conductive Quaternary Sediments, Huoqiu Deposit, China , 2017, Pure and Applied Geophysics.
[11] W. H. Pelton,et al. MAPPING PORPHYRY COPPER DEPOSITS IN THE PHILIPPINES WITH IP , 1976 .
[12] A. Galley,et al. Volcanogenic Massive Sulfide Deposits , 2005 .
[13] Tang Jing,et al. Effect rules of strong noise on magnetotelluric(MT) sounding in the Luzong ore cluster area , 2012 .
[14] Ming Deng,et al. The deep-tow marine controlled-source electromagnetic transmitter system for gas hydrate exploration , 2017 .
[15] Q. Cheng. Mapping singularities with stream sediment geochemical data for prediction of undiscovered mineral deposits in Gejiu, Yunnan Province, China , 2007 .
[16] Zhenwei Guo,et al. Image-guided regularization of marine electromagnetic inversion , 2017 .
[17] Pierre Keating,et al. Metalliferous mining geophysics — State of the art after a decade in the new millennium , 2011 .
[18] Wu Xi. Accurate identification for the electromagnetic impulse response of the earth with pseudo random coded waveforms , 2015 .
[19] Hansruedi Maurer,et al. A goal-oriented adaptive finite-element approach for plane wave 3-D electromagnetic modelling , 2013 .
[20] Liu Bin,et al. Three-dimensional FDTD modeling of TEM excited by a loop source considering ramp time , 2013 .
[21] Vladimir Druskin,et al. INTERPRETATION OF 3-D EFFECTS IN LONG-OFFSET TRANSIENT ELECTROMAGNETIC (LOTEM) SOUNDINGS IN THE MUNSTERLAND AREA/GERMANY , 1992 .
[22] Chen Gui,et al. Modeling of electromagnetic responses of 3-D electrical anomalous body in a layered anisotropic earth using integral equations , 2009 .
[23] G. Xue. The Development of Near-source Electromagnetic Methods in China , 2018 .
[24] Richard S. Smith. Electromagnetic Induction Methods in Mining Geophysics from 2008 to 2012 , 2013, Surveys in Geophysics.
[25] R. Sillitoe. A Plate Tectonic Model for the Origin of Porphyry Copper Deposits , 1972 .
[26] Li Hai,et al. Short-offset TEM technique with a grounded wire source for deep sounding , 2013 .
[27] Xianhu Luo,et al. Two types of marine controlled source electromagnetic transmitters , 2015 .
[28] Hefeng Dong,et al. Sparse CSEM inversion driven by seismic coherence , 2016 .
[29] Dongsheng Ma,et al. The role of hydrothermal alteration in tungsten mineralization at the Dahutang tungsten deposit, South China , 2018 .
[30] Lucy MacGregor,et al. Sea Bed Logging (SBL), a new method for remote and direct identification of hydrocarbon filled layers in deepwater areas , 2002 .
[31] Guillaume Houzeaux,et al. A parallel finite-element method for three-dimensional controlled-source electromagnetic forward modelling , 2013 .
[32] P. Bedrosian,et al. Detection of Widespread Fluids in the Tibetan Crust by Magnetotelluric Studies , 2001, Science.
[33] F. Frischknecht,et al. Fields about an oscillating magnetic dipole over a two-layer earth, and Application to ground and airborne electromagnetic surveys , 1967 .
[34] Alan G. Jones,et al. Structure of the Central Altyn Tagh Fault revealed by magnetotelluric data: New insights into the structure of the northern margin of the India–Asia collision , 2015 .
[35] R. Parker,et al. Occam's inversion; a practical algorithm for generating smooth models from electromagnetic sounding data , 1987 .
[36] D. C. Fraser,et al. The effect of the electrical anisotropy on the response of helicopter‐borne frequency‐domain electromagnetic systems , 2004 .
[37] Case study of a Towed Streamer EM survey over the Troll field, North Sea , 2011 .
[38] D.,et al. VOLCANOGENIC MASSIVE SULPHIDE DEPOSITS , 1998 .
[39] Michael S. Zhdanov,et al. The first practical 3D inversion of towed streamer EM data from the Troll field trial , 2012 .
[40] Comparison of the time-domain electromagnetic field from an infinitesimal point charge and dipole source , 2013, Applied Geophysics.
[41] Cai Jin. Weighted Laterally-constrained inversion of frequency-domain airborne EM data , 2014 .
[42] J. Richards,et al. Crustal lineament control on magmatism and mineralization in northwestern Argentina: geological, geophysical, and remote sensing evidence , 2002 .
[43] Anton Ziolkowski,et al. Hydrocarbon Detection With a Multi-channel Transient Electromagnetic Survey , 2001 .
[44] D. Oldenburg,et al. Inversion of geophysical data over a copper gold porphyry deposit; a case history for Mt. Milligan , 1997 .
[45] Changchun Yin,et al. 3D anisotropic modeling for airborne EM systems using finite-difference method , 2014 .
[46] Guoze Zhao,et al. Eastern termination of the Altyn Tagh Fault, western China: Constraints from a magnetotelluric survey , 2015 .
[47] G. Xue,et al. An Optimized Method for Transient Electromagnetic Field-Wave Field Conversion , 2005 .
[48] Xiangyun Hu,et al. Mineral Exploration using CSAMT data: Application to Longmen region metallogenic belt, Guangdong Province, China , 2013 .
[49] Kai Chen,et al. Multifunction Electromagnetic Transmitting System for Mineral Exploration , 2018, IEEE Transactions on Power Electronics.
[50] P. Jian,et al. Petrogenesis of Adakitic Porphyries in an Extensional Tectonic Setting, Dexing, South China: Implications for the Genesis of Porphyry Copper Mineralization , 2006 .
[51] Yin Changchun,et al. Weighted Laterally-Constrained Inversion of Time-Domain Airborne Electromagnetic Data , 2016 .
[52] Qingdong Zeng,et al. Integrated geophysical exploration for the Longtoushan Ag-Pb-Zn deposit in the southeast of the Da Xing’an Ling mountains, Inner Mongolia, northern China , 2010 .
[53] Liang-ming Liu,et al. Prediction of hidden ore bodies by synthesis of geological, geophysical and geochemical information based on dynamic model in Fenghuangshan ore field, Tongling district, China , 2004 .
[54] M. Jegen,et al. A first application of a marine inductive source electromagnetic configuration with remote electric dipole receivers: Palinuro Seamount, Tyrrhenian Sea , 2018, Geophysical Prospecting.
[55] K. Strack,et al. Long-offset transient electromagnetic (LOTEM) depth soundings applied to crustal studies in the Black Forest and Swabian Alb, Federal Republic of Germany , 1990 .
[56] R. Sillitoe. Porphyry Copper Systems , 2010 .
[57] P. Herzig. Economic potential of sea–floor massive sulphide deposits: ancient and modern , 1999, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[58] H. Tan,et al. MAGNETOTELLURIC THREE-DIMENSIONAL MODELING USING THE STAGGERED-GRID FINITE DIFFERENCE METHOD , 2003 .
[59] Yuanming Pan,et al. The Lower Changjiang (Yangzi/Yangtze River) metallogenic belt, east central China: intrusion- and wall rock-hosted Cu–Fe–Au, Mo, Zn, Pb, Ag deposits , 1999 .
[60] Ed Morris,et al. Multi‐transient electromagnetic repeatability experiment over the North Sea Harding field ‡ , 2010 .
[61] Deng Min. Several theoretical points and instrument technology of magnetotelluric data acquisition in deep water , 2013 .
[62] M. Zhdanov,et al. Integral equation method for 3D modeling of electromagnetic fields in complex structures with inhomogeneous background conductivity , 2006 .
[63] Kerry Key,et al. 1D inversion of multicomponent, multifrequency marine CSEM data: Methodology and synthetic studies for resolving thin resistive layers , 2009 .
[64] R. N. Edwards,et al. A time domain electromagnetic survey of the TAG Hydrothermal Mound , 1996 .
[65] L. Cagniard. Basic theory of the magneto-telluric method of geophysical prospecting , 1953 .
[66] P. Ni,et al. Design optimization of room and pillar mines: a case study of the Xianglushan tungsten mine , 2018, Quarterly Journal of Engineering Geology and Hydrogeology.
[67] James R. Wait. Transient Fields of a Vertical Dipole Over a Homogeneous Curved Ground , 1956 .
[68] Di Qing,et al. Research of the Surface Electromagnetic Prospecting(SEP)system , 2013 .
[69] Huaqi Li,et al. Mineralization and Fluid Inclusion Study of the Shizhuyuan W-Sn-Bi-Mo-F Skarn Deposit, Hunan Province, China , 2003 .
[70] A. Abubakar,et al. A Green function formulation of the Extended Born approximation for three-dimensional electromagnetic modelling , 2005 .
[71] Li Yan,et al. A Study on Parallel Computation for 3D Magneto‐Telluric Modeling Using the Staggered‐Grid Finite Difference Method , 2013 .
[72] Application of the CSAMT Method to Pb–Zn Mineral Deposits: A Case Study in Jianshui, China , 2019 .
[73] H. Tan,et al. Forward modeling and inversion of tensor CSAMT in 3D anisotropic media , 2017, Applied Geophysics.