| [1]曾一凡, 朱慧聪, 武强, 等.我国不同类别煤层顶板水害致灾机理与防控路径[J].煤炭学报, 2024, 49(3):1539-1555
[2]ZENG Yifan, ZHU Huicong, WU Qiang, et al.Disaster-causing mechanism and prevention and control path of different types of coal seam roof water disasters in China[J].Journal of China Coal Society, 2024, 49(3):1539-1555
[3]许家林.煤矿绿色开采年研究及进展[J].煤炭科学技术, 2020, 48(9):1-15
[4]XU Jialin.Research and progress of coal mine green mining in 20 years[J].Coal Science and Technology, 2020, 48(9):1-15
[5]王毅, 周余, 张丁丁, 等.综采工作面采动覆岩导水裂隙带发育高度综合研究[J].矿业安全与环保, 2024, 51(5):132-141
[6]WANG Yi, ZHOU Yu, ZHANG Dingding, et al.Comprehensive study on the development height of water-conducting fracture zone in overburden rock of fully mechanized mining face[J].Mining Safety & Environmental Protection, 2024, 51(5):132-141
[7]陈荣华, 白海波, 冯梅梅.综放面覆岩导水裂隙带高度的确定[J].采矿与安全工程学报, 2006, 23(2):220-223
[8]CHEN Ronghua, BAI Haibo, FENG Meimei.Determination of the height of water flowing fractured zone in overburden strata above fully-mechanized top-coal caving face[J].Journal of Mining & Safety Engineering, 2006, 23(2):220-223
[9]许家林, 王晓振, 刘文涛, 等.覆岩主关键层位置对导水裂隙带高度的影响[J].岩石力学与工程学报, 2009, 28(2):380-385
[10]XU Jialin, WANG Xiaozhen, LIU Wentao, et al.Effects of primary key stratum location on height of water flowing fracture zone[J].Chinese Journal of Rock Mechanics and Engineering, 2009, 28(2):380-385
[11]许家林, 朱卫兵, 王晓振.基于关键层位置的导水裂隙带高度预计方法[J].煤炭学报, 2012, 37(5):762-769
[12]XU Jialin, ZHU Weibing, WANG Xiaozhen.New method to predict the height of fractured water-conducting zone by location of key strata[J].Journal of China Coal Society, 2012, 37(5):762-769
[13]胡小娟, 李文平, 曹丁涛, 等.综采导水裂隙带多因素影响指标研究与高度预计[J].煤炭学报, 2012, 37(4):613-620
[14]HU Xiaojuan, LI Wenping, CAO Dingtao, et al.Index of multiple factors and expected height of fully mechanized water flowing fractured zone[J].Journal of China Coal Society, 2012, 37(4):613-620
[15]王文学, 隋旺华, 董青红, 等.松散层下覆岩裂隙采后闭合效应及重复开采覆岩破坏预测[J].煤炭学报, 2013, 38(10):1728-1734
[16]WANG Wenxue, SUI Wanghua, DONG Qinghong, et al.Closure effect of mining-induced fractures under sand aquifers and prediction of overburden failure due to re-mining[J].Journal of China Coal Society, 2013, 38(10):1728-1734
[17]杨达明, 郭文兵, 赵高博, 等.厚松散层软弱覆岩下综放开采导水裂隙带发育高度[J].煤炭学报, 2019, 44(11):3308-3316
[18]YANG Daming, GUO Wenbing, ZHAO Gaobo, et al.Height of water conducting zone in longwall top-coal caving mining under thick alluvium and soft overburden[J].Journal of China Coal Society, 2019, 44(11):3308-3316
[19]韩猛, 杜莉莉, 耿新胜, 等.基于响应曲面法近距离煤层群导水裂隙带影响因素分析[J].煤炭工程, 2024, 56(05):114-120
[20]HAN Meng, DU Lili, GENG Xinsheng, et al.Analysis of influencing factors of water conducted zone in close distance coal seam group based on response surface method[J].Coal engineering, 2024, 56(05):114-120
[21]李博, 吴煌, 李腾.基于加权的综采导水裂隙带高度多元非线性回归预测方法研究[J].采矿与安全工程学报, 2022, 39(3):536-545
[22]LI Bo, WU Huang, LI Teng.Height prediction of water-conducting fractured zone under fully mechanized mining based on weighted multivariate nonlinear regression[J].Journal of Mining & Safety Engineering, 2022, 39(3):536-545
[23]寻博辉, 吕义清, 姚星.导水裂隙带发育高度预测模型对比研究[J].煤炭科学技术, 2023, 51(3):190-200
[24]XUN Bohui, LYU Yiqing, YAO Xing.Comparison of prediction models for the development height of water-conducting fractured zone[J].Coal Science and Technology, 2023, 51(3):190-200
[25]邬建宏,潘俊锋,高家明,等.黄陇侏罗纪煤田导水裂隙带高度预测研究[J].煤炭科学技术, 2023, 51(S1):231-241
[26]WU Jianhong, PAN Junfeng, GAO Jiaming, et al.Research on prediction of the height of water-conducting fracture zone in Huanglong Jurassic Coalfield[J].Coal Science and Technology, 2023, 51(S1):231-241
[27]姬亚东, 刘譞, 朱开鹏, 等.彬长矿区煤层采动导水裂隙带高度-模型预测对比研究[J].煤矿安全, 2025, 56(7):175-184
[28]JI Yadong, LIU Xuan, ZHU Kaipeng, et al.Comparative study on RF-BP model prediction of mining water conducting fracture zone height in Binchang Coal Mine[J].Safety in Coal Mines, 2025, 56(7):175-184
[29]杜文刚, 柴敬, 张丁丁, 等.采动覆岩导水裂隙发育光纤感测与表征模型试验研究[J].煤炭学报, 2021, 46(5):1565-1575
[30]DU Wengang, CHAI Jing, ZHANG Dingding, et al.Optical fiber sensing and characterization of water flowing fracture development in mining overburden[J].Journal of China Coal Society, 2021, 46(5):1565-1575
[31]朱磊, 古文哲, 柴敬, 等.采动覆岩全场变形演化过程分布式光纤监测研究[J].采矿与岩层控制工程学报, 2022, 4(1):13-14
[32]ZHU Lei, GU Wenzhe, CHAI Jing, et al.Evolution of mining induced overburden deformation using distributed optical fiber[J].Journal of Mining and Strata Control Engineering, 2022, 4(1):13-14
[33].
[34]冀汶莉, 田忠, 柴敬, 等.多属性融合分布式光纤导水裂隙带高度预测方法[J].吉林大学学报工学版, 2023, 53(4):1200-1210
[35]JI Wenli, TIAN Zhong, CHAI Jing, et al.Prediction of water-flowing height in fractured zone based on distributed optical fiber and multi-attribute fusion[J].Journal of Jilin University (Engineering and Technology Edition), 2023, 53(4):1200-1210
[36]柴华彬, 张俊鹏, 严超.基于-的采动覆岩导水裂隙带高度预测[J].采矿与安全工程学报, 2018, 35(2):359-365
[37]CHAI Huabin, ZHANG Junpeng, YAN Chao.Prediction of water flowing height in fractured zone of overburden strata based on GA SVR[J].Journal of Mining & Safety Engineering, 2018, 35(2):359-365
[38]张宏伟, 朱志洁, 霍丙杰, 等.基于改进的-导水裂隙带高度预测研究[J].中国安全科学学报, 2013, 23(10):9-14
[39]ZHANG Hongwei, ZHU Zhijie, HUO Bingjie, et al.Water flowing fractured zone height prediction based on improved FOA-SVM[J].China Safety Science Journal, 2013, 23(10):9-14
[40]娄高中, 谭毅.基于-神经网络的导水裂隙带高度预测[J].煤田地质与勘探, 2021, 49(4):198-204
[41]LOU Gaozhong, TAN Yi.Prediction of the height of water flowing fractured zone based on PSO-BP neural network[J].Coal Geology & Exploration, 2021, 49(4):198-204
[42]袁峰, 申涛, 谢晓深, 等.基于深度学习的地震多属性融合技术在导水裂隙带探测中的应用[J].煤炭学报, 2021, 46(10):3234-3244
[43]YUAN Feng, SHEN Tao, XIE Xiaoshen, et al.Application of deep learning-based seismic multi-attribute fusion technology in the detection of water conducting fissure zone[J].Journal of China Coal Society, 2021, 46(10):3234-3244
[44]赵子浩, 刘进晓, 王来河, 等.近水平煤层覆岩导水裂隙带高度预计与实测[J].矿业安全与环保, 2017, 44(2):66-69
[45]ZHAO Zihao, LIU Jinxiao, WANG Laihe, et al.Prediction and actual measurement of water flowing fractured zone height in overburden strata of flat seam[J].Mining Safety & Environmental Protection, 2017, 44(2):66-69
[46]徐树媛, 张永波, 孙灏东, 等.基于核ε-的导水裂隙带高度预测模型研究[J].安全与环境学报, 2021, 21(5):2022-2029
[47]XU Shuyuan, ZHANG Yongbo, SUN Haodong, et al.Predictable testing and determination of the height of the fractured water conducting zone based on the ε-SVR model via the RBF kernel function[J].Journal of Safety and Environment, 2021, 21(5):2022-2029
[48]白海波, 缪协兴.水资源保护性采煤的研究进展与面临的问题[J].采矿与安全工程学报, 2009, 26(3):253-262
[49]BAI Haibo, MIAO Xiexing.Research Progress and Major Problems of Water Preserved Coal Mining[J].Journal of Mining & Safety Engineering, 2009, 26(3):253-262
[50] 曹少方.背斜构造下采动裂隙场发育演化规律模拟试验研究[D]. 河北工程大学, 2020.
[51]CAO Shaofang.Simulaional and experimental study ondevelopment and evolution of an anticlinalstructure mining overlying strata fracturefield[D]. Hebei University of Engineering, 2020. |