• Chinese Core Periodicals
  • Chinese Core Journals of Science and Technology
  • RCCSE Chinese Authoritative Academic Journals
ZHU Shikui, DING Ke. Optimization of support parameters of water rich roadway based on thickness of grouting reinforcement circle[J]. Safety in Coal Mines, 2021, 52(7): 193-199,206.
Citation: ZHU Shikui, DING Ke. Optimization of support parameters of water rich roadway based on thickness of grouting reinforcement circle[J]. Safety in Coal Mines, 2021, 52(7): 193-199,206.

Optimization of support parameters of water rich roadway based on thickness of grouting reinforcement circle

More Information
  • Published Date: July 19, 2021
  • In order to solve the problem of the selection of bolt grouting support parameters and the problem that there is no clear basis for the range of grouting reinforcement in the water rich roadway, this paper takes the water rich roadway in the mountain on the boundary of Ⅱ1 mining area of Taoyuan Coal Mine as the engineering background. By means of theoretical analysis, numerical simulation and field monitoring, the relationship between the thickness of grouting reinforcement circle and the bearing capacity of grouting reinforcement is analyzed, and the optimization method of supporting parameters of water rich roadway based on the thickness of grouting reinforcement circle is proposed. The research shows that: the minimum thickness of grouting reinforcement circle is 1.5 m, and the bolt grouting support scheme based on the thickness of grouting reinforcement circle can effectively control the deformation of deep water rich roadway and ensure the stability and safety of roadway.
  • [1]
    宋业杰,张玉军,胡炳南.积水采空区下厚煤层综放开采技术[J].煤矿安全,2014,45(6):79-82.

    SONG Yejie, ZHANG Yujun, HU Bingnan. Thick-seam fully mechanized caving mining technology under water accumulated gob[J]. Safety in Coal Mines, 2014, 45(6): 79-82.
    [2]
    刘鑫,陈陆望,林曼利,等.采动影响下矿井突水水源Fisher判别与地下水补给关系反演[J].水文地质工程地质,2013,40(4):36-43.

    LIU Xin, CHEN Luwang, LIN Manli, et al. Fisher discriminant analysis for coal mining inrush water source under mining-induced disturbance and inversion of groundwater recharge relation[J]. Hydrogeology and Engineering Geology, 2013, 40(4): 36-43.
    [3]
    黎灵,舒宗运,冯宇锋.特厚煤层综放开采覆岩离层水突水机理分析及防治[J].煤炭科学技术,2018,46(1):175-182.

    LI Ling, SHU Zongyun, FENG Yufeng. Analysis and prevention on mechanism of water inrush from bed separation water of overburden by fully-mechanized top coal caving mining in ultra thick seam[J]. Coal Science and Technology, 2018, 46(1): 175-182.
    [4]
    孙建,王连国,赵光明.神东特殊保水开采煤层条带充填覆岩隔水层稳定性判据[J].中国矿业大学学报,2018,47(5):957-968.

    SUN Jian, WANG Lianguo, ZHAO Guangming. Stability criterion of overburden water-resistant strata supported by filling strip in Shendong special water-preserved mining area[J]. Journal of China University of Mining & Technology, 2018, 47(5): 957-968.
    [5]
    姜崇扬,王连国,李文帅,等.纳米SiO2对水泥剪切强度及浆液流变性质影响的试验研究[J].煤矿安全,2020,51(8):67-71.

    JIANG Chongyang, WANG Lianguo, LI Wenshuai, et al. Experimentalstudy on effect of nano-SiO2 on shear strength and rheological properties of cement[J]. Safety in Coal Mines, 2020, 51(8): 67-71.
    [6]
    何富连,李晓斌,朱恒忠,等.顶板淋水对巷道围岩变形破坏的影响及防治[J].煤矿安全,2019,50(6):162-165.

    HE Fulian, LI Xiaobin, ZHU Hengzhong, et al. Influence of roof water spray on deformation and failure of roadway surrounding rock and prevention measures[J]. Safety in Coal Mines, 2019, 50(6): 162-165.
    [7]
    杜贝举,刘长友,吴锋锋,等.深井高应力软弱围岩巷道变形机理及控制研究[J].采矿与安全工程学报,2020,37(6):1123-1132.

    DU Beiju, LIU Changyou, WU Fengfeng, et al. Deformation mechanism and control technology of roadway in deep mine with high stress and weak surrounding rock[J]. Journal of Mining & Safety Engineering, 2020, 37(6): 1123-1132.
    [8]
    王俊良.过导水断层软岩巷道围岩稳定控制技术[J].煤矿安全,2020,51(12):85.

    WANG Junliang. Surrounding rock stability control technology of soft rock roadway passing water conductive fault[J]. Safety in Coal Mines, 2020, 51(12): 85.
    [9]
    秦鹏飞.不良地质体注浆细观力学模拟研究[J].煤炭学报,2020,45(7):2646-2654.

    QIN Pengfei. Study on meso-mechanical simulation of grouting in bad geo-body[J]. Journal of China Coal Society, 2020, 45(7): 2646-2654.
    [10]
    张农,许兴亮,李桂臣,等.巷道围岩裂隙演化规律及渗流灾害控制[J].岩石力学与工程学报,2009,28(2):330-335.

    ZHANG Nong, XU Xingliang, LI Guichen, et al. Fissure-evolving laws of surrounding rock mass of roadway and control of seepage disasters[J]. Chinese Journal of Rock Mechanics and Engineering, 2009, 28(2): 330-335.
    [11]
    李桂臣,张农,许兴亮,等.水致动压巷道失稳过程与安全评判方法研究[J].采矿与安全工程学报,2010, 27(4):410-415.

    LI Guichen, ZHANG Nong, XU Xingliang, et al. Study on water-caused instability process of the dynamic pressure roadway and safety assessment[J]. Journal of Mining & Safety Engineering, 2010, 27(4): 410-415.
    [12]
    陈钢林,周仁德.水对受力岩石变形破坏宏观力学效应的实验研究[J].地球物理学报,1991,34(3):335.

    CHEN Ganglin, ZHOU Rende. An experimental study concerning the macroscopic effect of water on the defomation and failure of loaded rocks[J]. Chinese Journal of Geophysics, 1991, 34(3): 335-342.
    [13]
    周翠英,彭泽英,尚伟,等.论岩土工程中水-岩相互作用研究的焦点问题--特殊软岩的力学变异性[J].岩土力学,2002,23(1):124-128.

    ZHOU Cuiying, PENG Zeying, SHANG Wei, et al. On the key problem of the water-rock interaction in geoengineering:mechanical variability of special weak rocks and some development trends[J]. Rock and Soil Mechanics, 2002, 23(1): 124-128.
    [14]
    刘长武,陆士良.泥岩遇水崩解软化机理的研究[J].岩土力学,2000,21(1):28-31.

    LIU Changwu, LU Shiliang. Research on mechanism of mudstone degradation and softening in water[J]. Rock and Soil Mechanics, 2000, 21(1): 28-31.
    [15]
    冯志强,康红普.新型聚氨酯堵水注浆材料的研究及应用[J].岩土工程学报,2010,32(3):375-380.

    FENG Zhiqiang, KANG Hongpu. Development and application of new waterproof grouting materials of polyurethane[J]. Chinese Journal of Geotechnical Engineering, 2010, 32(3): 375-380.
    [16]
    高明仕,张农,张连福,等.伪硬顶高地压水患巷道围岩综合控制技术及工程应用[J].岩石力学与工程学报,2005,24(21):3996-4002.

    GAO Mingshi, ZHANG Nong, ZHANG Lianfu, et al. Synthetical control technique and engineering application to roadway with false-hard roof high surrounding pressure and water disturbance[J]. Chinese Journal of Rock Mechanics and Engineering, 2005, 24(21): 3996-4002.
    [17]
    许兴亮,张农.富水条件下软岩巷道变形特征与过程控制研究[J].中国矿业大学学报,2007,36(3):298.

    XU Xingliang, ZHANG Nong. Study of control process deformation behavior and of soft rock drift under rich water condition[J]. Journal of China University of Mining & Technology, 2007, 36(3): 298.
    [18]
    曾佑富,伍永平,来兴平,等.复杂条件下大断面巷道顶板冒落失稳分析[J].采矿与安全工程学报,2009, 26(4):423.

    ZENG Youfu, WU Yongping, LAI Xingping, et al. Analysis of roof caving instability mechanism of large-section roadway under complex conditions[J]. Journal of Mining & Safety Engineering, 2009, 26(4): 423.
    [19]
    聂建伟,钟新春.淋水复合顶板巷道锚梁网支护设计与应用分析[J].煤矿开采,2007,12(2):39-41.

    NIE Jianwei, ZHONG Xinchun. Bolting beam mesh supporting design and application analysis on tricking roadway with combined roof[J]. Coal Mining Technology, 2007, 12(2): 39-41.
    [20]
    吴智明.煤巷围岩遇水软化条件下的锚杆支护技术研究[M]//谷拴成,杨更社,任建喜.西部矿山建设工程理论与实践.徐州:中国矿业大学出版社,2009:372-376.
    [21]
    姚强岭,李学华,瞿建迪,等.泥岩顶板巷道遇水冒顶机理与支护对策分析[J].采矿与安全工程学报,2008,28(1):28-33.

    YAO Qiangling, LI Xuehua, QU Jiandi, et al. Supporting countermeasures and roof falling mechanism reacting with water in mudstone roof roadway[J]. Journal of Mining & Safety Engineering, 2008, 28(1): 28-33.
    [22]
    孙振宇,张顶立,房倩,等.基于超前加固的深埋隧道围岩力学特性研究[J].工程力学,2018,35(2):92.

    SUN Zhenyu, ZHANG Dingli, FANG Qian, et al. Research on the mechanical property of the surrounding rock of deep-buried tunnel based on the advanced reinforcement[J]. Engineering Mechanics, 2018, 35(2): 92-104.
    [23]
    HOEK E, CARANZA-TORRES C T, CORCUM B. Hoek-Brown failure criterion[C]// Proceedings of the North American Rock Mechanics Society. Toronto: Mining Innovation and Technology, 2002: 267-273.
  • Related Articles

    [1]ZHANG Hongliang. Mobile Monitoring Platform Based on Coal Mine Safety Monitoring System[J]. Safety in Coal Mines, 2020, 51(11): 133-136.
    [2]MENG Fanrui, ZHAO Yong, JING Yanbo, ZHAO Guoyong, SHAO Jirong, REN Zhichao. An Intelligent Mobile Gas Drainage Pumping Station[J]. Safety in Coal Mines, 2020, 51(6): 117-119,123.
    [3]HU Ming, LI Fuqiang, GUO Jianpeng. Monitoring System for Underground Mobile Robot Based on OpenWrt[J]. Safety in Coal Mines, 2017, 48(12): 104-106,110.
    [4]ZHANG Baodong. Application of Multi-source Information Fusion and Knowledge Discovery in Coal Mine Gas Monitoring[J]. Safety in Coal Mines, 2017, 48(5): 137-139,143.
    [5]FAN Dong. Development of ZMK5530TZJ60 Type Mobile Rig[J]. Safety in Coal Mines, 2017, 48(5): 117-119.
    [6]WANG Yiran, LIU Qiuzu, LIU Yanping, ZHAO Bohui. Research on Coal Mine Dust Monitoring Based on Two-stage Data Fusion Technology[J]. Safety in Coal Mines, 2016, 47(11): 187-189.
    [7]ZHANG Man, CHEN Ning, HE Jie, SHI Huixia. Application of Group Special Mobile Communication Technology in Mine Hydrology Monitoring[J]. Safety in Coal Mines, 2016, 47(7): 105-108.
    [8]JIN Yannan, ZOU Bo, HAN Jie. Design of Mobile Video Monitoring System for Underground Mine[J]. Safety in Coal Mines, 2015, 46(6): 104-106,110.
    [9]CHEN Yunqi, ZHONG Yu. Coal Mine Safety Monitoring Platform for Mobile Internet[J]. Safety in Coal Mines, 2015, 46(3): 237-240.
    [10]SUN Yan-fei, LI Zhi-chao, WANG Jing, GUO Ji-yi. Application of Multi-sensor Data Fusion in Coal Mine Safety Monitoring[J]. Safety in Coal Mines, 2012, 43(1): 102-104.

Catalog

    Article views (49) PDF downloads (12) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return