|
|
|
| Application of natural source single component magnetotelluric technology in the detection of old goaf in Huasheng Coal Industry |
| Hao Chengzhu1, Li Peitao2, Zhang Xin3, Liu Jiping1, Hu Zhiyuan1, Li Gaopeng4 |
1. Shanxi Puxian Huasheng Coal Industry Co., Ltd., Linfen 041200, China; 2. China University of Mining and Technology (Beijing) National Coal Mine Water Disaster Prevention Engineering Technology Research Center, Beijing 100083, China;
3. Jinneng Holding Group Taiyuan Coal Gasification Company Emergency Command Center, Taiyuan 030006, China;
4. Taiyuan Coal Gasification (Group) Co., Ltd. Geological Survey Water Control Center, Taiyuan 030006, China |
|
|
|
|
Abstract In order to solve the problem of accurate detection of old goaf water accumulation area, the single component magnetotelluric detection technology of natural source was deeply studied. Using a component of natural electromagnetic field, the physical property information of rock stratum was extracted by Fourier series decomposition, and the influence of rock stratum on electromagnetic wave was quantified. The physical property index model was established, and the main influencing factors including dielectric constant, density, elastic brittleness, porosity and cementation degree of rock stratum were normalized and calculated, which could better reflect the obvious physical property difference between old goaf and surrounding rock. According to the physical property index model, the MaxwIII lithology detector and the corresponding data processing program were developed. The instrument was used to carry out the detection experiment of the old goaf water accumulation area in Huasheng Coal Industry, which could effectively identify the fault, goaf and water accumulation area. The drilling verification showed that the detection results were accurate. The equipment was light, simple, economical and efficient, and had the dual functions of earthquake and electric method. It had wide application prospects in the fields of underground goaf area, water accumulation area detection, grouting water plugging, old goaf water pollution control and so on.
|
|
|
|
|
|
| [ 1 ] 程建远,聂爱兰,张 鹏. 煤炭物探技术的主要进展及发展趋势[ J ]. 煤田地质与勘探,2016,44( 6 ):136 - 141.
[ 2 ] 刘国栋,邓前辉. 电磁方法研究与勘探[ M ]. 北京:地震出版社,1993.
[ 3 ] 林 君. 核磁共振找水技术的研究现状与发展趋势[ J ]. 地球物理学进展,2010,25( 2 ):681 - 691.
[ 4 ] 严家斌,刘贵忠. 天然大地电磁场时间序列的分形特征[ J ]. 煤田地质与勘探,2007,35( 2 ):66 - 69.
[ 5 ] 杨庆锦,王招香. 大地电场岩性测深原理及方法技术的探讨[ J ]. 地球物理学进展,1999,14( 3 ):84 - 86.
[ 6 ] 刘 洪. 只测天然水平电场提取地下各深度信息的一种可能方案[ J ]. 地球物理学报,1991,34( 1 ):120 - 124.
[ 7 ] 李百寿,秦其明,叶 霞. 安徽淮北煤矿富水区被动式超低频电磁探测结果解析[ J ]. 地质与勘探,2009,45( 4 ):432 - 437.
[ 8 ] 曹 宝,秦其明,李百寿,等. 天然超低频电磁场日夜交替及其稳定性分析[ J ]. 北京大学学报:自然科学版,2008( 1 ):79 - 83.
[ 9 ] 刘天佑. 应用地球物理数据采集与处理[ M ]. 武汉:中国地质大学出版社,2004.
[ 10 ] 李 芳,曹长修. 基于DFT的信号幅值谱分析[ J ]. 重庆工学院学报:自然科学版,2007,21( 4 ):64 - 66.
[ 11 ] 牛之琏. 时间域电磁法原理[ M ]. 长沙:中南大学出版社,2007.
[ 12 ] 李沛涛,武 强,李卓融,等. 大地电磁单分量精准处理技术与深部致灾水体探测[ J ]. 煤田地质与勘探,2022,50( 12 ):142 - 151.
[ 13 ] 孙 坤,李沛涛,李蔚林,等. 基于物性指数的大地电磁信号多维度耦合正演与工程试验[ J ]. 煤炭与化工,2023,46( 10 ):57 - 60,118.
[ 14 ] 武 强,王金华,刘东海,等. 煤层底板突水评价的新型实用方法Ⅳ:基于 GIS 的 AHP 型脆弱性指数法应用[ J ]. 煤炭学报,2009,34( 2 ):233 - 238. |
|
|
|