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| Study on surface subsidence of' three under' coal of Yangdong Mine |
| Zhang Menghua |
| Water cultural relics survey team of CNACG , Handan 056000, China |
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Abstract In order to study the influence of underground mining on surface subsidence in Yangdong Mine, the surface subsidence caused by mining in No.06201 Face was studied by means of theoretical analysis and numerical simulation. The results showed that the maximum subsidence value of surface was 1.74 m and the maximum horizontal displacement value was 0.537 m by two methods. Through numerical simulation, it was concluded that the overlying rock migration and stress cloud map were symmetrically distributed along the middle of the goaf during the mining process, and the maximum displacement of the roof was about 2 m. There were stress concentration areas on both sides of the coal wall, and the maximum stress value reached nearly 34 MPa. The surface center displacement corresponding to the middle of the goaf was the largest, and the maximum horizontal displacement occurs at the model length of 147 m. It was observed that the land subsidence and horizontal displacement of Yangdong Mine were within the expected range, and the effective prediction of surface subsidence could ensure the normal mining.
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| [ 1 ] 贺杰兵.“三下”压煤中矸石充填开采地表沉陷规律探究[ J ]. 煤炭与化工,2019,42( 2 ):38 - 41,45.
[ 2 ] 高保彬,刘云鹏,潘家宇,等. 水体下采煤中导水裂隙带高度的探测与分析[ J ]. 岩石力学与工程学报,2014,33( S1 ):3 384 - 3 390.
[ 3 ] 郭文兵,马志宝,白二虎. 我国煤矿“三下一上”采煤技术现状与展望[ J ]. 煤炭科学技术,2020,48( 9 ):16 - 26.
[ 4 ] 宋高峰,刘会臣,任志成.“三下”压煤充填采煤技术发展现状及展望[ J ]. 煤矿安全,2014,45( 10 ):191 - 193,197.
[ 5 ] 许家林,轩大洋,朱卫兵,等. 基于关键层控制的部分充填采煤技术[ J ]. 采矿与岩层控制工程学报,2019,1( 2 ):69 - 76.
[ 6 ] 陈 杰,李青松. 建筑物、水体下采煤技术现状[ J ]. 煤炭技术,2010,29( 12 ):76 - 78.
[ 7 ] 于广云,葛新辉. 厚表土层下采煤对地表及铁路桥的影响分析[ J ]. 地下空间与工程学报,2005( S1 ):98 - 101,105.
[ 8 ] 戴华阳,廖孟光,孟宪营,等. 峰峰矿区九龙矿水库下采煤安全性分析[ J ]. 煤炭学报,2014,39( S2 ):295 - 300.
[ 9 ] Guo X, Zhang X X, Yue J W, et al. A case study of the key factors and mechanism associated with mining site pollution control based on an E-platform management system[ J ]. International Biodeterioration & Biodegradation, 2018, 128: 177 - 181.
[ 10 ] Liu Yan Jun, Wang Zhao Jia, Li Run Feng, et al. Optimization of the Pozzolanic Activity of Coal Gangue Waste for Eco-Efficient Cementitious Materials[ J ]. Key Engineering Materials, 2022, 6 363: 303 - 313.
[ 11 ] 吴 涛,方向清,宁树正,等. 华北型煤田“三下一上”煤炭资源现状及开发利用研究[ J ]. 煤炭科学技术,2021,49( 9 ):129 - 135.
[ 12 ] 徐祝贺,朱润生,何文瑞,等. 厚松散层浅埋煤层大工作面开采沉陷模型研究[ J ]. 采矿与安全工程学报,2020,37( 2 ):264 - 271
[ 13 ] 王汉斌. 急倾斜多煤层开采诱发覆岩及地表移动规律研究[ D ]. 北京:中国地质大学,2020.
[ 14 ] 陆玉根,孙国权,徐 刚,等. 崩落法开采岩移及塌陷规律相似材料模拟实验[ J ]. 金属矿山,2015( S1 ):1 - 6.
[ 15 ] 郭从军,南存全,王 东. 近距离煤层覆岩移动相似材料模拟[ J ]. 金属矿山,2015( 1 ):10 - 15. |
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