Citation: | DUAN Jianhua. Integrated monitoring technology of water inrush from coal seam floor and its application[J]. COAL GEOLOGY & EXPLORATION, 2020, 48(4): 19-28. DOI: 10.3969/j.issn.1001-1986.2020.04.003 |
[1] |
张文泉,张广鹏,李伟,等. 煤层底板突水危险性的Fisher判别分析模型[J]. 煤炭学报,2013,38(10):1831-1836.
ZHANG Wenquan,ZHANG Guangpeng,LI Wei,et al. A model of Fisher's discriminant analysis for evaluating water inrush risk from coal seam floor[J]. Journal of China Coal Society,2013,38(10):1831-1836.
|
[2] |
靳德武. 我国煤矿水害防治技术新进展及其方法论思考[J]. 煤炭科学技术,2017,45(5):141-147.
JIN Dewu. New development of water disaster prevention and control technology in China coal mine and consideration on methodology[J]. Coal Science and Technology,2017,45(5):141-147.
|
[3] |
彭苏萍,王金安. 承压水体上安全采煤[M]. 北京:煤炭工业出版社,2001:34-35.
PENG Suping,WANG Jin'an. Safe mining on confined water[M]. Beijing:China Coal Industry Publishing House,2001:34-35.
|
[4] |
张金才,张玉卓,刘天泉. 岩体渗流与煤层底板突水[M]. 北京:地质出版社,1997:48-51.
ZHANG Jincai,ZHANG Yuzhuo,LIU Tianquan. Seepage of rock mass and water inrush from coal seam floor[M]. Beijing:Geological Publishing House,1997:48-51.
|
[5] |
钱鸣高,缪协兴,许家林,等. 岩层控制的关键层理论[M]. 徐州:中国矿业大学出版社,2003:76-80.
QIAN Minggao,LIAO Xiexing,XU Jialin,et al. Key stratum theory of strata control[M]. Xuzhou:China University of Mining and Technology Press,2003:76-80.
|
[6] |
施龙青,韩进. 底板突水机理及预测预报[M]. 徐州:中国矿业大学出版社,2004:45-50.
SHI Longqing,HAN Jin. Mechanism and prediction of floor water inrush[M]. Xuzhou:China University of Mining and Technology Press,2004:45-50.
|
[7] |
原富珍,马克,庄端阳,等. 基于微震监测的董家河煤矿底板突水通道孕育机制[J]. 煤炭学报,2019,44(6):1846-1856.
YUAN Fuzhen,MA Ke,ZHUANG Duanyang,et al. Preparation mechanism of water inrush channels in bottom floor of Dongjiahe coal mine based on microseismic monitoring[J]. Journal of China Coal Society,2019,44(6):1846-1856.
|
[8] |
武强. 我国矿井水防控与资源化利用的研究进展、问题和展望[J]. 煤炭学报,2014,39(5):795-805.
WU Qiang. Progress,problems and prospects of prevention and control technology of mine water and reutilization in China[J]. Journal of China Coal Society,2014,39(5):795-805.
|
[9] |
杨天鸿,师文豪,李顺才,等. 破碎岩体非线性渗流突水机理研究现状及发展趋势[J]. 煤炭学报,2016,41(7):1598-1609.
YANG Tianhong,SHI Wenhao,LI Shuncai,et al. State of the art and trends of water-inrush mechanism of nonlinear flow in fractured rock mass[J]. Journal of China Coal Society,2016,41(7):1598-1609.
|
[10] |
虎维岳,赵春虎. 基于充水要素的矿井水害类型三线图划分方法[J]. 煤田地质与勘探,2019,47(5):1-8.
HU Weiyue,ZHAO Chunhu. Trilinear chart classification method of mine water hazard type based on factors of water recharge[J]. Coal Geology & Exploration,2019,47(5):1-8.
|
[11] |
刘盛东,刘静,戚俊,等. 矿井并行电法技术体系与新进展[J]. 煤炭学报,2019,44(8):2336-2345.
LIU Shengdong,LIU Jing,QI Jun,et al. Applied technologies and new advances of parallel electrical method in mining geophysics[J]. Journal of China Coal Society,2019,44(8):2336-2345.
|
[12] |
鲁晶津. 煤矿井下含/导水构造三维电阻率反演成像技术[J]. 煤炭学报,2016,41(3):687-695.
LU Jingjin. 3D electrical resistivity inversion and imaging technology for coal mine water-containing/water-conductive structures[J]. Journal of China Coal Society,2016,41(3):687-695.
|
[13] |
刘德民,尹尚先,连会青,等. 煤矿底板突水定量预警准则及预警系统研究[J]. 煤炭工程,2019,51(4):16-20.
LIU Demin,YIN Shangxian,LIAN Huiqing,et al. Study on quantitative warning criteria and early warning system for water inrush from coal floor[J]. Coal Engineering,2019,51(4):16-20.
|
[14] |
杨天鸿,唐春安,谭志宏,等. 岩体破坏突水模型研究现状及突水预测预报研究发展趋势[J]. 岩石力学与工程学报,2007,26(2):268-277.
YANG Tianhong,TANG Chun'an,TAN Zhihong,et al. State of the art of inrush models in rock mass failure and developing trend for prediction and forecast of groundwater inrush[J]. Chinese Journal of Rock Mechanics and Engineering,2007,26(2):268-277.
|
[15] |
鲁晶津,王冰纯,颜羽. 矿井电法在煤层采动破坏和水害监测中的应用进展[J]. 煤炭科学技术,2019,47(3):18-26.
LU Jingjin,WANG Bingchun,YAN Yu. Advances of mine electrical resistivity method applied in coal seam mining destruction and water inrush monitoring[J]. Coal Science and Technology,2019,47(3):18-26.
|
[16] |
程建远,金丹,覃思. 煤矿地质保障中地球物理探测技术面临的挑战[J]. 煤炭科学技术,2013,41(9):112-116.
CHENG Jianyuan,JIN Dan,QIN Si. Challenges faced by geophysical detection technology in mine geological guarantee system[J]. Coal Science and Technology,2013,41(9):112-116.
|
[17] |
刘超,吴顺川,程爱平,等. 采动条件下底板潜在导水通道形成的微震监测与数值模拟[J]. 北京科技大学学报,2014,36(9):1129-1135.
LIU Chao,WU Shunchuan,CHENG Aiping,et al. Microseis micmonitoring and numerical simulation of the formation of water inrush pathway caused by coal mining[J]. Journal of University of Science and Technology Beijing,2014,36(9):1129-1135.
|
[18] |
徐智敏,孙亚军,巩思园,等. 高承压水上采煤底板突水通道形成的监测与数值模拟[J]. 岩土力学与工程学报,2012,31(8):1698-1704.
XU Zhimin,SUN Yajun,GONG Siyuan,et al. Monitoring and numerical simulation of formation of water inrush pathwaycaused by coal mining above confined water with high pressure[J]. Chinese Journal of Rock Mechanics and Engineering,2012,31(8):1698-1704.
|
[19] |
张平松,翟恩发,程爱民,等. 深厚煤层开采底板变形特征的光纤监测研究[J]. 地下空间与工程学报,2019,15(4):1197-1211.
ZHANG Pingsong,ZHAI Enfa,CHENG Aimin,et al. Optical fiber monitoring study on characteristics of deformation in floor of deep and thick coal seam during mining[J]. Chinese Journal of Underground Space and Engineering,2019,15(4):1197-1211.
|
[20] |
李白英,沈光寒,荆自刚,等. 预防采掘工作面底板突水的理论与实践[J]. 煤矿安全,1988(5):47-48.
LI Baiyin,SHEN Guanghan,JING Zigang,et al. Theory and practice of preventing water inrush from the floor of mining face[J]. Safety in Coal Mines,1988(5):47-48.
|
[21] |
沈光寒,李白英,吴戈. 矿井特殊开采的理论与实践[M]. 北京:煤炭工业出版社,1992:56-72.
SHEN Guanghan,LI Baiying,WU Ge. Theory and practice of special mining[M]. Beijing:China Coal Industry Publishing House,1992:56-72.
|
[22] |
李白英. 预防矿井底板突水的"下三带"理论及其发展与应用[J]. 山东矿业学院学报(自然科学版),1999,18(4):11-18.
LI Baiying. "Down Three Zones" in the prediction of the water inrush from coalbed floor aquifer-theory,development and application[J]. Journal of Shandong Institute of Mining and Technology(Natural Science),1999,18(4):11-18.
|
[23] |
王经明. 承压水沿煤层底板递进导升机理的模拟与观测[J]. 岩土工程学报,1999,21(5):546-549.
WANG Jingming. In-situ measurement and physical analogue on water inrush from coal floor induced by progressive intrusion of artesian water into protective aquiclude[J]. Chinese Journal of Geotechnical Engineering,1999,21(5):546-549.
|
[24] |
王经明. 承压水沿煤层底板递进导升机理的物理方法研究[J]. 煤田地质与勘探,1999,27(6):40-43.
WANG Jingming. Physical investigation on water inrush from coal floor induced by pressure water progressive intrusion up into protective aquiclude[J]. Coal Geology & Exploration,1999,27(6):40-43.
|
[25] |
王经明. 承压水沿煤层底板递进导升的突水机理及其应用[D]. 北京:煤炭科学研究总院,2004:78-82.
WANG Jingming. Water inrush mechanism and application of confined water advancing along coal seam floor[D]. Beijing:China Coal Research Institute,2004:78-82.
|
[26] |
李楠,王恩元,GE Maochen. 微震监测技术及其在煤矿的应用现状与展望[J]. 煤炭学报,2017,42(增刊1):83-96.
LI Nan,WANG Enyuan,GE Maochen. Microseismic monitoring technique and its applications at coal mines present status and future prospects[J]. Journal of China Coal Society,2017,42(Sup.1):83-96.
|
[27] |
陈歌,孙亚军,徐智敏,等. 微震监测技术在矿井水害防治中的研究进展[J]. 金属矿山,2019(1):7-15.
CHEN Ge,SUN Yajun,XU Zhimin,et al. Study progress for microseism monitoring technique on the predication and control in mine water disaster[J]. Metal Mine,2019(1):7-15.
|
[28] |
姜福兴,叶根喜,王存文,等. 高精度微震监测技术在煤矿突水监测中的应用[J]. 岩石力学与工程学报,2008,27(9):1932-1938.
JIANG Fuxing,YE Genxi,WANG Cunwen,et al. Application of high-precision microseismic monitoring technique to water inrush monitoring in coal mine[J]. Chinese Journal of Rock Mechanics and Engineering,2008,27(9):1932-1938.
|
[29] |
程关文,王悦,马天辉,等. 煤矿顶板岩体微震分布规律研究及其在顶板分带中的应用:以董家河煤矿微震监测为例[J]. 岩石力学与工程学报,2017,36(增刊2):4036-4046.
CHENG Guanwen,WANG Yue,MA Tianhui,et al. Research on the partitioning method of the overburden in coal mine based on microseismic monitoring[J]. Chinese Journal of Rock Mechanics and Engineering,2017,36(Sup.2):4036-4046.
|
[30] |
高原,周蕙兰,郑斯华,等. 测定震源深度的意义的初步讨论[J]. 中国地震,1997,13(4),321-329.
GAO Yuan,ZHOU Huilan,ZHENG Sihua,et al. Preliminary discussion on implication of determination on source depth of earthquake[J]. Earthquake Research in China,1997,13(4),321-329.
|
[31] |
MENDECKI A J. Seismic monitoring in mines[M]. London:Chapman and Hall Press,1997:67-80.
|
[32] |
田玥,陈晓非. 地震定位研究综述[J]. 地球物理学进展,2002,17(1):147-155.
TIAN Yue,CHEN Xiaofei. Review of seismic location study[J]. Progress in Geophysics,2002,17(1):147-155.
|
[33] |
段建华,闫文超,南汉晨,等. 井-孔联合微震技术在工作面底板破坏深度监测中的应用[J]. 煤田地质与勘探,2020,48(1):208-213.
DUAN Jianhua,YAN Wenchao,NAN Hanchen,et al. Application of mine-hole joint microseismic technology in monitoring the damage depth of working face floor[J]. Coal Geology & Exploration,2020,48(1):208-213.
|
[34] |
BRACEW F,ORANGE A S. Electrical resistivity changes in saturated rocks during fracture and frictional sliding[J]. Journal of Geophysical Research,1968,73(4):1433-1445.
|
[35] |
候克昌. 形变-电阻率法探测煤层底板水导高[J]. 煤田地质与勘探,1991,19(6):46-49.
HOU Kechang. The application of deformation-resistivitymethod to upilift height of the bottom water about the coalseam[J]. Coal Geology & Exploration,1991,19(6):46-49.
|
[36] |
刘盛东,吴荣新,胡水根,等. 网络分布式并行电法勘探系统[C]. 中国地球物理年会论文集. 2006:251. LIU Shengdong,WU Rongxin,HU Shuigen,et al. Network distributed parallel electrical exploration system[C]. Proceedings of the annual geophysical conference of China,2006:251.
|
[37] |
李建楼,刘盛东,张平松,等. 并行网络电法在煤层覆岩破坏监测中的应用[J]. 煤田地质与勘探,2008,36(2):61-64.
LI Jianlou,LIU Shengdong,ZHANG Pingsong,et al. Failure dynamic observation of upper covered stratum under mine using parallel network electricity method[J]. Coal Geology & Exploration,2008,36(2):61-64.
|
[38] |
LI S,LIU B,NIE L,et al. Detecting and monitoring of water inrush in tunnels and coal mines using direct current resistivity method:A review[J]. Journal of Rock Mechanics and Geotechnical Engineering,2015,7(4):469-478.
|
[39] |
鲁晶津,李德山,王冰纯. 超大采高工作面顶板电阻率监测可行性试验[J]. 煤田地质与勘探,2019,47(增刊3):186- 194. LU Jingjin,LI Deshan,WANG Bingchun. Feasibility test of roof resistivity monitoring for super-high mining face[J]. Coal Geology & Exploration,2019,47(Sup.3):186-194.
|
[40] |
虎维岳,尹尚先. 采煤工作面底板突水灾害发生的采掘扰动力学机制[J]. 岩石力学与工程学报,2010,29(增刊1):3344-3349.
HU Weiyue,YIN Shangxian. Dynamic mechanism of water inrush from floor of mining face[J]. Chinese Journal of Rock Mechanics and Engineering,2010,29(Sup.1):3344-3349.
|
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