|
|
Comparison of application effects of WFEM and CSAMT in water-rich area of Xinyuan Coal Mine |
LI Di-Quan1,2,3( ), XIAO Jiao-Yu1,2,3, ZHANG Ji-Feng4, HU Yan-Fang1,2,3, LIU Zui-Liang5, ZHANG Xin5 |
1. Key Laboratory of Metallogenic Prediction of Nonferrous Metals and Geological Environment Monitoring,Central South University, Changsha 410083, China 2. Hunan Provincial Key Laboratory of Non-ferrous Resources and Geological Hazard Detection, Changsha 410083, China 3. School of Geosciences and Info-physics, Central South University, Changsha 410083, China 4. School of Earth Science and Resources, Chang'an University, Xi'an 710000, China 5. Geological Survey Department of Yangquan Coal Industry Group, Yangquan 045000, China |
|
|
Abstract To detect the water-rich areas in coal seams, the wide-field electromagnetic method (WFEM) was employed in the Xinyuan mining area of Huayang New Material Technology Group Co., Ltd. for the first time. Meanwhile, the controlled source audio-frequency magnetotellurics (CSAMT) was used for comparison. According to the comparison results of the apparent resistivity curves, frequency-apparent resistivity pseudo sections, and inversion results, WFEM enjoys the advantages of large detection depth, high efficiency, and high precision and thus serves as a new effective technology for the detection of water-rich areas in coal mines.
|
Received: 21 December 2020
Published: 15 December 2021
|
|
|
|
|
|
Relationship between known aquifer and main coal seam in Xinyuan minefield
|
地层 | 主要岩性 | 电阻率范围(平均值)/(Ω·m) | 电性特征 | 上石盒子组(P2s) | 砂岩、硅质岩、泥岩 | >82.4(150.2) | 高阻 | 下石盒子组(P1x) | 泥岩、细粒长石石英砂岩 | 20~30(25.1) | 低阻 | 山西组(P1s) | 砂岩 | 60~72(66.5) | 高阻 | | 泥岩 | 15~20(19.8) | 低阻 | | 煤层 | 320~340(335.7) | 高阻 | 太原组(C2t) | 砂质泥岩 | 15~30(20) | 高阻 | | 石灰岩 | >370(420.3) | | | 煤层 | >300(380.6) | | | 砂岩、泥岩 | 150~160(155.8) | | 本溪组(C2b) | 粉砂岩、铝质泥岩 | 60~75(71.6) | 低阻 | 峰峰组(O2f) | 泥质灰岩、层状石灰岩 | <100(63.4) | 低阻 | 上马家沟组(O2s) | 石灰岩、白云质灰岩 | >960(1200) | 高阻 |
|
Statistics of physical parameters of stratum and surrounding rock
|
|
Survey line layout
|
|
Schematic diagram of WFEM's observation device
|
|
Comparison of apparent resistance curve between CSAMT and WFEM at point 235 and 237
|
|
Comparison of apparent resistance curve between CSAMT and WFEM at point 381 and 383
|
|
Comparison of apparent resistivity of original data of WFEM and CSAMT
|
|
285 line inversion results and water outlet verification
|
|
Comparison of inversion results of WFEM (a) and CSAMT (b) of line 280
|
[1] |
何继善. 广域电磁法理论及应用研究的新进展[J]. 物探与化探, 2020, 44(5):985-990.
|
[1] |
He J S. New research progress in theory and application of wide field electromagnetic method[J]. Geophysical and Geochemical Exploration, 2020, 44(5):985-990.
|
[2] |
李帝铨, 胡艳芳. 强干扰矿区中广域电磁法与CSAMT探测效果对比[J]. 物探与化探, 2015, 39(5):967-972.
|
[2] |
Li D Q, Hu Y F. A comparison of wide field electromagnetic method with CSAMT method in strong interferential mining area[J]. Geophysical and Geochemical Exploration, 2015, 39(5):967-972.
|
[3] |
薛国强, 于景邨. 瞬变电磁法在煤炭领域的研究与应用新进展[J]. 地球物理学进展, 2017, 32(1):319-326.
|
[3] |
Xue G Q, Yu J C. New development of TEM research and application incoal mine exploration[J]. Progress in Geophysics, 2017, 32(1):319-326.
|
[4] |
何继善. 广域电磁测深法研究[J]. 中南大学学报:自然科学版, 2010, 41(3):1065-1072.
|
[4] |
He J S. Wide field electromagnetic sounding methods[J]. Journal of Central South University:Science and Technology, 2010, 41(3):1065-1072.
|
[5] |
王宏宇, 李帝铨, 柳建新, 等. 广域电磁法在鄂尔多斯盆地西南缘含油富集区探测中的应用[J]. 地球物理学进展, 2020, 35(3):1038-1047.
|
[5] |
Wang H Y, Li D Q, Liu J X, et al. Application of wide-field electromagnetic method in the detection of oil-rich enrichment areas in the southwestern margin of the Ordos basin[J]. Progress in Geophysics, 2020, 35(3):1038-1047.
|
[6] |
梁维天, 孙新胜, 王东波, 等. 广域电磁法在河洼多金属矿勘查中的应用[J]. 物探与化探, 2020, 44(5):1048-1052.
|
[6] |
Liang W T, Sun X S, Wang D B, et al. The application of the wide field electromagnetic method in the exploration of the Hewa polymetallic ore deposit[J]. Geophysical and Geochemical Exploration, 2020, 44(5):1048-1052.
|
[7] |
田红军, 张光大, 刘光迪, 等. 黔北台隆区地热勘探中广域电磁法的应用效果[J]. 物探与化探, 2020, 44(5):1093-1097.
|
[7] |
Tian H J, Zhang G D, Liu G D, et al. The application effect of the wide field electromagnetic method in geothermal exploration of Tailong area, northern Guizhou Province[J]. Geophysical and Geochemical Exploration, 2020, 44(5):1093-1097.
|
[8] |
詹少全, 丁梅花, 李爱勇, 等. 贵州碳酸盐岩山区广域电磁法勘探应用[J]. 物探与化探, 2020, 44(1):88-92.
|
[8] |
Zhan S Q, Ding M H, Li A Y, et al. The application of wide field electromagnetic sounding method to exploration in carbonatite mountain areas of Guizhou Province[J]. Geophysical and Geochemical Exploration, 2020, 44(1):88-92.
|
[9] |
李帝铨, 汪振兴, 胡艳芳, 等. 广域电磁法在武陵山区页岩气勘探中的探索应用——以黔北桐梓地区为例[J]. 物探与化探, 2020, 44(5):991-998.
|
[9] |
Li D Q, Wang Z X, Hu Y F, et al. The application of wide field electromagnetic method to shale gas exploration in Wuling Mountain area: A case study of Tongzi area in northern Guizhou[J]. Geophysical and Geochemical Exploration, 2020, 44(5):991-998.
|
[10] |
符超, 袁博, 李学兰, 等. 广域电磁法在保靖页岩气勘探中的应用[J]. 工程地球物理学报, 2016, 13(4):416-422.
|
[10] |
Fu C, Yuan B, Li X L, et al. Application of wide area electromagnetic method in shale gas exploration in Baojing[J]. Journal of Engineering Geophysics, 2016, 13(4):416-422.
|
[11] |
何继善. 广域电磁法和伪随机信号电法[M]. 北京: 高等教育出版社, 2010.
|
[11] |
He J S. Wide field electromagnetic method and pseudo random signal method [M]. Beijing: Higher Education Press, 2010, 1-7.
|
[12] |
何继善. 可控源音频大地电磁[M]. 长沙: 中南工业大学出版社, 1990.
|
[12] |
He J S. CSAMT [M]. Changsha: Central South University of Technology Press, 1990.
|
[13] |
汤井田. 可控源音频大地电磁法及其应用[M]. 长沙: 中南工业大学出版社, 2005.
|
[13] |
Tang J T. Controllable source audio frequency magnetotelluric method and its application [M]. Changsha: Central South University of Technology Press, 2005.
|
[1] |
XUE Dong-Xu, LIU Cheng, GUO Fa, WANG Jun, XU Duo-Xun, YANG Sheng-Fei, ZHANG Pei. Predicting the geothermal resources of the Tangyu geothermal field in Meixian County, Shaanxi Province, based on soil radon measurement and the controlled source audio magnetotelluric method[J]. Geophysical and Geochemical Exploration, 2023, 47(5): 1169-1178. |
[2] |
YANG Tian-Chun, HU Feng-Ming, YU Xi, FU Guo-Hong, LI Jun, YANG Zhui. Analysis and application of the responses of the frequency selection method of telluric electricity field[J]. Geophysical and Geochemical Exploration, 2023, 47(4): 1010-1017. |
|
|
|
|