Intensive field measurements for characterizing the permeability and methane release with the treatment process of pressure-relief mining

被引:0
|
作者
Cun Zhang
Ziyu Song
Qingsheng Bai
Lei Zhang
Jianhang Chen
机构
[1] China University of Mining and Technology (Beijing),Beijing Key Laboratory for Precise Mining of Intergrown Energy and Resources
[2] China University of Mining and Technology,Key Laboratory of Deep Coal Resource Ming, Ministry of Education
[3] TU Bergakademie Freiberg,Geotechnical Institute
[4] China University of Mining & Technology,School of Mines
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Characterizing the permeability evolution and methane release is of great significance for the safe mining of the high gas outburst seams, as well as coal and gas simultaneous extraction. It contributes to reduce methane emissions from coal mining for greenhouse effect control. Theoretical analysis, laboratory testing, and numerical simulation are widely used methods to characterize the permeability and methane release with the treatment process of pressure-relief mining. However, these methods cannot fully reflect the complexity of filed practice. In this study, we report the effectiveness of protective coal seam (PCS) mining and the pressure-relief area in the protected coal seam (PDCS) based on detailed and integrated field measurements in a Chinese coal mine. To the best of our knowledge, it is the first time to measure the permeability coefficient and gas pressure evolution in the PDCS during the process of PCS longwall mining. The evolution of the permeability coefficient in the pressure-relief area during PCS mining can be divided into four stages: slowly decreasing, sharply increasing, gradually decreasing, and basically stable. The maximum permeability coefficient is 322 times of the initial value and stabilized at 100 times after the goaf compacted. The gas pressure evolution in the PDCS indicates that the strike pressure relief angle is 52.2° at the active longwall face zone, and 59.3° at the installation roadway side. The inclined pressure relief angles at the lower and upper sides of the longwall face are 75° and 78.9°, respectively. The residual gas content and gas pressure of the PDCS in the pressure-relief area are reduced to less than 6 m3/t and within 0.4 MPa, respectively. The field measurements further prove that pressure-relief mining can prevent coal and gas outbursts in PDCSs. The field observations in this paper can serve as benchmark evidence for theoretical analysis and numerical simulations, and also provide insights into realizing safety mining in similar conditions.
引用
收藏
相关论文
共 8 条
  • [1] Intensive field measurements for characterizing the permeability and methane release with the treatment process of pressure-relief mining
    Zhang, Cun
    Song, Ziyu
    Bai, Qingsheng
    Zhang, Lei
    Chen, Jianhang
    SCIENTIFIC REPORTS, 2022, 12 (01)
  • [2] Pressure-relief and methane production performance of pressure relief gas extraction technology in the longwall mining
    Zhang, Cun
    Tu, Shihao
    Chen, Min
    Zhang, Lei
    JOURNAL OF GEOPHYSICS AND ENGINEERING, 2017, 14 (01) : 77 - 89
  • [3] Research on permeability evolution law of goaf and pressure-relief mining effect
    Tu S.
    Zhang C.
    Yang G.
    Bai Q.
    Yan R.
    2016, China University of Mining and Technology (33): : 571 - 577
  • [4] Fractal Characterization of Pressure-Relief Gas Permeability Evolution in a Mining Fracture Network
    Xu, Peiyun
    Li, Shugang
    Lin, Haifei
    Ding, Yang
    Shuang, Haiqing
    Liu, Sibo
    Tian, Yu
    ENERGIES, 2021, 14 (21)
  • [5] Experimental analysis on pressure-relief increased permeability and its application in gas drainage under coal mining
    Cheng, Y. (prk2008@126.com), 1600, E-Journal of Geotechnical Engineering (19 K):
  • [6] Experimental analysis on pressure-relief increased permeability and its application in gas drainage under coal mining
    Cheng, Yuanping (prk2008@126.com), 1600, E-Journal of Geotechnical Engineering (19):
  • [7] Numerical analysis and field tests of self-relief pressure zone ahead of mining workface: implications for methane extraction during underground mining
    Haidong Chen
    Erlei Su
    Xiangjun Chen
    Zhaofeng Wang
    Kang An
    Environmental Earth Sciences, 2023, 82
  • [8] Numerical analysis and field tests of self-relief pressure zone ahead of mining workface: implications for methane extraction during underground mining
    Chen, Haidong
    Su, Erlei
    Chen, Xiangjun
    Wang, Zhaofeng
    An, Kang
    ENVIRONMENTAL EARTH SCIENCES, 2023, 82 (24)