• Chinese Core Periodicals
  • Chinese Core Journals of Science and Technology
  • RCCSE Chinese Authoritative Academic Journals
HUANG Bing, LI Rongxin, ZHOU Songyuan. Projective and positioning technology for spatial visualization borehole in underground coal mine[J]. Safety in Coal Mines, 2021, 52(2): 93-97.
Citation: HUANG Bing, LI Rongxin, ZHOU Songyuan. Projective and positioning technology for spatial visualization borehole in underground coal mine[J]. Safety in Coal Mines, 2021, 52(2): 93-97.

Projective and positioning technology for spatial visualization borehole in underground coal mine

More Information
  • Published Date: February 19, 2021
  • Aiming at the problem that it is difficult to accurately locate the borehole for gas drainage in coal mine, this paper analyzes the common borehole location methods currently used in coal mines, discusses the main problems existing in these methods, and proposes the spatial visualization borehole projection location technology. In this paper, the technical principle, algorithm research, technical characteristics and technical innovation of spatial visualization drilling projection positioning technology are described in detail, and the technical feasibility is analyzed, this technology can solve the problem of quickly demarcating the hole position, dip angle and azimuth angle of the gas drainage boreholes in different areas of outburst prevention measures, the method can realize the projection and calibration of multiple boreholes at one time, avoid the error caused by manual calculation and setting-out, and save the positioning time of boreholes in drilling field. The research results show that the time of demarcating a drilling site by the technology of visual borehole projection location in underground space of coal mine is not more than 30 minutes, which is 80% higher than the traditional method in time effect.
  • [1]
    于不凡.煤和瓦斯突出机理[M].北京:煤炭工业出版社,1985.
    [2]
    郭阳,祁公团,陈亮.煤矿几种常见钻孔的定位与放线[J].内蒙古煤炭经济,2019(2):123-124.

    GUO Yang, QI Gongtuan, CHEN Liang. Location and laying-out of several common boreholes in coal mines[J]. Inner Mongolia Coal Economy, 2019(2): 123-124.
    [3]
    石智军,董书宁,姚宁平,等.煤矿井下近水平随钻测量定向钻进技术与装备[J].煤炭科学技术,2013,41(3):1-6.

    SHI Zhijun, DONG Shuning, YAO Ningping, et al. Technology and equipment of horizontal measuring directional drilling in underground coal mine[J]. Coal Science and Technology, 2013, 41(3): 1-6.
    [4]
    叶强波.底抽巷全倾角多方位定向钻机设计[J].煤矿机械,2020,41(12):51-53.

    YE Qiangbo. Design of directional drilling rig with full dip angle and multi direction in bottom drainage roadway[J]. Coal Mine Machinery, 2020, 41(12): 51-53.
    [5]
    李泉新,石智军,史海岐.煤矿井下定向钻进工艺技术的应用[J].煤田地质与勘探,2014,42(2):85-88.

    LI Quanxin, SHI Zhijun, SHI Haiqi. The Application of directional drilling technology in coal mine[J]. Coal Geology & Exploration, 2014, 42(2): 85-88.
    [6]
    周红.快速标定井下钻孔方位角的新方法[J].陕西煤炭,2017(4):129-130.

    ZHOU Hong. A novel method for fast calibration of underground drilling azimuth[J]. Shaanxi Coal, 2017(4):129-130.
    [7]
    李泉新.煤矿井下定向钻孔轨迹设计与计算方法[J].煤矿安全,2014,45(2):141-144.

    LI Quanxin. Design and calculation method of directional borehole trajectory in coal mine underground[J]. Safety in Coal Mines, 2014, 45(2): 141-144.
    [8]
    国家煤矿安全监察局.煤与瓦斯突出细则[M].北京:煤炭工业出版社,2019.
    [9]
    王文玉,刘震,杨赫.石门揭煤区域防突钻孔优化设计[J].矿业安全与环保,2018,45(5):87-90.

    WANG Wenyu, LIU Zhen, YANG He. The optimization of borehole for outburst prevention in rock cross-cut coal uncovering area[J]. Mining Safety & Environmental Protection, 2018, 45(5): 87-90.
    [10]
    卢平,李平,周德永,等.石门揭煤防突抽放瓦斯钻孔合理布置参数的研究[J].煤炭学报,2002,27(3):242-248.

    LU Ping, LI Ping, ZHOU Deyong, et al. Study on reasonable layout parameters of gas drilling for uncovering coal and outburst in Shimen[J]. Journal of China Coal Society, 2002, 27(3): 242-248.
    [11]
    张明杰,滑俊杰,华敬涛.单一煤层底板巷穿层钻孔预抽煤巷瓦斯条带区域防突技术[J].煤矿安全,2011,42(6):30-32.
    [12]
    马国龙.顺层瓦斯抽采钻孔施工偏差研究[J].煤矿安全,2017,48(3):147-151.

    MA Guolong. Study on construction error of bedding gas drainage boreholes[J]. Safety in Coal Mines, 2017, 48(3): 147-151.
    [13]
    徐乃忠,涂敏.三维立体瓦斯抽采钻孔程序设计及应用[J].煤矿安全,2013,44(9):17-19.

    XU Naizhong, TU Min. Program design and application of three-dimensional gas extraction drilling[J]. Safety in Coal Mines, 2013, 44(9): 17-19.
    [14]
    张吉林,岳俊,谭瑶,等.钻孔三维可视化系统构建与应用[J].煤炭技术,2017,36(10):106-108.

    ZHANG Jilin, YUE Jun, TAN Yao, et al. Construction and application of 3D borehole visualization system[J]. Coal Technology, 2017, 36(10): 106-108.
  • Related Articles

    [1]WANG Yanbin. Development of data acquisition instrument for coal and gas outburst based on wireless communication[J]. Safety in Coal Mines, 2022, 53(12): 101-106.
    [2]Research progress on intelligent monitoring and early warning technology of fire risk in coal mine belt conveyor transportation[J]. Safety in Coal Mines, 2022, 53(9): 47-54.
    [3]HUANG Hesong, WANG Jiahao, DAI Chuanhao, TIAN Chengjin, WANG Zhen. An intrinsically safe low-power data acquisition system for mine based on XBee3[J]. Safety in Coal Mines, 2021, 52(6): 143-148.
    [4]SHU Lichun. Cloud edge integrated coal mine safety production risk monitoring and early warning platform based on big data[J]. Safety in Coal Mines, 2021, 52(5): 144-148.
    [5]ZHANG Xiantao. Android Bluetooth Data Acquisition for Directional Drilling of Coal Mine by Wired MWD[J]. Safety in Coal Mines, 2019, 50(8): 111-113.
    [6]YIN Peng, XIAO Kaitai, XIAO Changliang, ZENG Zhi. Data Acquisition Method of Coal Mine Safety Monitoring System[J]. Safety in Coal Mines, 2019, 50(8): 104-106.
    [7]ZHANG Weijie. Implementation of Data Acquisition Efficiency Optimization Based on Multi-threading[J]. Safety in Coal Mines, 2019, 50(5): 113-115.
    [8]ZHANG Qiang. Wireless Data Acquisition Instrument for Roof Pressure Based on STM32[J]. Safety in Coal Mines, 2018, 49(6): 95-98.
    [9]ZHOU Haikun. Design of Data Acquisition System for High Concurrent Coal Mine Safety Monitoring[J]. Safety in Coal Mines, 2018, 49(6): 85-87,91.
    [10]BI Chang-hu, ZENG Wei, JIN Shu-jun, LI Bin-hu. The Application of FPGA in Mine-used Data Acquisition System[J]. Safety in Coal Mines, 2012, 43(9): 95-97.
  • Cited by

    Periodical cited type(14)

    1. 夏利玲,孙翠玲,张慧,黄春香. 基于CAN和REST物联网技术的智能矿山安全检测系统研发. 金属矿山. 2024(03): 215-220 .
    2. 戚建刚. 智慧应急法制模式之初探. 当代法学. 2024(03): 43-54 .
    3. 于永政,陈虹燕,张宝林,王浩. 矿山安全“再监督”监管平台设计与应用研究. 工业安全与环保. 2024(07): 79-82+89 .
    4. 范海波. 基于卫星遥感及GIS空天地一体化智慧矿山技术研究及应用. 世界有色金属. 2024(12): 55-57 .
    5. 王竑达,司书国,王淼,张博文,于倩倩. 矿山安全风险智能监测预警系统研究. 邮电设计技术. 2024(11): 25-30 .
    6. 成连华,张璇,郭慧敏,曹东强. 智能化背景下矿工风险感知水平对不安全行为产生的影响. 西安科技大学学报. 2024(06): 1041-1049 .
    7. 蔡强. 矿井环境智能化安全监测技术的研究现状. 内蒙古煤炭经济. 2023(01): 106-108 .
    8. 任艳. 煤矿智能监控系统在生产中的应用探究. 内蒙古煤炭经济. 2023(01): 172-174 .
    9. 毛乾宇. 基于卫星遥感及GIS空天地一体化智慧矿山技术研究及应用. 煤炭科技. 2023(03): 172-176 .
    10. 任志成,时宝,胡继峰,伦嘉云. 煤矿安全管理智能化建设及发展研究. 中国煤炭. 2023(07): 61-66 .
    11. 李雄锋,李刚,张枝伟,肖铸. 贵州煤矿“电子封条”智能监管平台建设与应用研究. 内蒙古煤炭经济. 2023(10): 115-117 .
    12. 任志成,孔德中,宋高峰,许鹏飞,李淋. 基于GRA和AHP的煤矿一般事故防控研究. 矿业研究与开发. 2023(12): 131-137 .
    13. 王国法,富佳兴,孟令宇. 煤矿智能化创新团队建设与关键技术研发进展. 工矿自动化. 2022(12): 1-15 .
    14. 于世勇. 煤矿用空压机智能群控节能控制系统的应用研究. 内蒙古煤炭经济. 2022(21): 21-23 .

    Other cited types(6)

Catalog

    Article views (51) PDF downloads (0) Cited by(20)

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return