Multifactorial analysis of a gateroad stability at goaf interface during longwall coal mining-A case study

被引:12
|
作者
Babets, Dmytro [1 ]
Sdvyzhkova, Olena [1 ]
Hapieiev, Serhii [1 ]
Shashenko, Oleksandr [1 ]
Prykhodchenko, Vasyl [1 ]
机构
[1] Dnipro Univ Technol, Dnipro, Ukraine
来源
MINING OF MINERAL DEPOSITS | 2023年 / 17卷 / 02期
关键词
longwall; gateroad; stability; numerical simulation; GMDH; predictive model; DESIGN; AREA;
D O I
10.33271/mining17.02.009
中图分类号
TD [矿业工程];
学科分类号
0819 ;
摘要
Purpose. Creating a generalized algorithm to account for factors (coal seam thickness, enclosed rock mechanical properties, the dimension and bearing capacity of artificial support patterns) causing a gateroad state under the effect of longwall face and goaf. Methods. The assessment of the gateroad stability is based on numerical simulation of the rock stress-strain state (SSS). The finite element method is used to find out the changes in the SSS of surrounding rocks at various stages of longwall mining. The elastic-plastic constitutive model and Hoek-Brown failure criterion implemented in codes RS2 and RS3 (Rocscience) are applied to determine rock displacements dependently on the coal seam thickness, enclosed rock strength, width and strength of artificial support (a packwall comprised of hardening mixture "BI-lining"). To specify the mechanical properties of the packwall material a series of experimental tests were conducted. A computational experiment dealing with 81 combinations of affecting factors was carried out to estimate the roof slag and floor heaving in the gateroad behind the longwall face. A group method of data handling (GMDH ) is employed to generalize the relationships between rock displacements and affecting factors. Findings. The roof-to-floor closure in the gateroad has been determined at the intersection with the longwall face and goaf dependently on the coal seam thickness, enclosed rock strength, width of the packwall, and strength of hardening material. It is revealed that the support material gains the strength value of 30 MPa on the 3rd day from its beginning to use which is fully corresponding to the requirements of protective element bearing capacity. The possibility of using untreated mine water to liquefy the mixture is proved, that allows simplifying and optimizing the solute mixing and pumping technology. Originality. This study contributes to improving the understanding of the factors that influence the stability of underground mining operations and highlights the importance of utilizing numerical simulations in optimizing mining designs. The impact of each factor on the resulting variable (decrease in cross-section of gate road by height) based on the combinatorial algorithm of structural identification of the model is estimated as follows: the packwall width is 48%, the thickness of coal seam is 25%, the strength of enclosing rocks is 23%, and the strength of the packwall material is 4%. Practical implications. The findings provide stakeholders with a technique to determine reasonable parameters for support and protective systems, and the predictive model developed can be used to mitigate potential instability issues in longwall mining excavations. The results have implications under similar geological settings and can be valuable for mine design and optimization in other regions.
引用
收藏
页码:9 / 19
页数:11
相关论文
共 50 条
  • [31] The Application of Nitrogen Curtain Technology to Longwall Goaf to Prevent the Spontaneous Combustion of Coal: A Case Study in Shajihai Coalmine, China
    Geng, Hai-Jiang
    Zhao, Ya-Ming
    Liu, Xiang-Lan
    Tian, Fu-Chao
    FIRE-SWITZERLAND, 2023, 6 (09):
  • [32] Risk evaluation of groundwater leakage in coal seam goaf: a case study in the Lingxin Mining Area
    Yang, Lianzhi
    Xu, Jianjian
    Fang, Jie
    Cao, Zhiguo
    Li, Tianxin
    Song, Hongqing
    ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2020, 27 (21) : 26066 - 26078
  • [33] Analysis of the safety of longwall mining under water body - Case study
    Guo Wenbing
    Li Xiaoshuang
    PROGRESS IN MINING SCIENCE AND SAFETY TECHNOLOGY, PTS A AND B, 2007, : 284 - 288
  • [34] Hydraulic fracturing of hard top coal and roof for controlling gas during the initial mining stages in longwall top coal caving: a case study
    Huang, Bingxiang
    Cheng, Qingying
    Zhao, Xinglong
    Kang, Chao
    JOURNAL OF GEOPHYSICS AND ENGINEERING, 2018, 15 (06) : 2492 - 2506
  • [35] Case study on pressure-relief mining technology without advance tunneling and coal pillars in longwall mining
    Wang, Yajun
    He, Manchao
    Yang, Jun
    Wang, Qi
    Liu, Jianning
    Tian, Xichun
    Gao, Yubing
    TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2020, 97
  • [36] Risk evaluation of groundwater leakage in coal seam goaf: a case study in the Lingxin Mining Area
    Lianzhi Yang
    Jianjian Xu
    Jie Fang
    Zhiguo Cao
    Tianxin Li
    Hongqing Song
    Environmental Science and Pollution Research, 2020, 27 : 26066 - 26078
  • [37] Study of gas permeability in top-coal during mechanical longwall top-coal caving mining
    Cheng, Guo-Ming
    Wu, Jian
    Wang, Si-Jing
    Xiangtan Kuangye Xueyuan Xuebao/Journal of Xiangtan Mining Institute, 2002, 17 (04):
  • [38] Analysis of stress level during longwall mining of a coal seam with the use of seismic effect method
    Wojtecki, L.
    Golda, I.
    MINING OF SUSTAINABLE DEVELOPMENT, 2019, 261
  • [39] A Case Study of Surface Borehole Wall Dislocation Induced by Top-Coal Longwall Mining
    Ju, Jinfeng
    Xu, Jialin
    Xu, Jingmin
    ENERGIES, 2017, 10 (12)
  • [40] The assessment of the optimal time window for prediction of seismic hazard for longwall coal mining: the case study
    Malkowski, Piotr
    Niedbalski, Zbigniew
    Sojka, Wojciech
    ACTA GEOPHYSICA, 2021, 69 (02) : 691 - 699