Disaster mechanism during passing of working face under overlying remnant coal pillar and advanced regional prevention technology

被引:0
|
作者
Yang H. [1 ]
Zheng K. [1 ,2 ]
Li B. [1 ]
Li Y. [1 ]
Yang S. [1 ]
Wang Z. [1 ]
Wang H. [1 ]
Dai N. [1 ]
机构
[1] Xi’an Research Institute of China Coal Technology Engineering Group Corp., Xi’an
[2] School of Earth and Environment, Anhui University of Science and Technology, Huainan
关键词
ground pressure; hydraulic fracturing; leading weakening; residual coal pillar; shallow buried; short distance;
D O I
10.12438/cst.2022-1373
中图分类号
学科分类号
摘要
When the mining of the underlying working face of shallow and close seam passes under the overlying remnant coal pillar, it is easy to have an intensive mine pressure-induced dynamic disaster, resulting in personnel and equipment damage, which seriously threatens the safety of mine production. The characteristics induction, numerical simulation calculation, mechanical model analysis and other research methods are used to clarify the occurrence of the hazards of the overlying remnant coal pillars in the shallow and close seams, and reveal the disaster mechanism caused by intensive mining pressure. The research shows that the disaster mechanism of the intensive ground pressure caused by the overlying remnant coal pillar is that when the working face passes under the coal pillar, the coal pillar and the overlying bearing body are disturbed and suddenly lose stability, and the energy is transferred to the stope instantly, which is released in the form of kinetic energy, resulting in the intensive ground pressure-induced dynamic disaster. Based on the prevention and control idea of “collapsed rock support+weakening of key rock stratum+transfer of stress transmission path”, the prevention and control technology of weakening for front area using subsectional-hydraulic fracturing was proposed by modifying the coal pillar and bearing body migration space, weakening key rock stratum, uniformly distributing concentrated stress and transferring stress transmission path, and engineering tests are carried out at typical working faces. The engineering test results show that during the implementation of hydraulic fracturing, the peak value of pumping pressure reaches 23.4 MPa, the pressure changes generally in a “zigzag” shape, accompanied by a sudden drop of pressure for more than 60 times, and the artificial main fractures and micro fractures in the rock mass continue to develop alternately, effectively destroying the integrity of the rock mass; After treatment, the peak value and average value of periodic pressure decreased by 15.41% and 8.29% respectively, and the peak value and average dynamic load coefficient decreased by 17.39% and 11.88%, respectively. The maximum contraction of the shield cylinder was 50.00% and less than 0.4 m, and the maximum contraction of the gate road roof was 33.33%. The working face safely passed through the affected area of the overlying remnant coal pillar, and the advanced area weakening technology of subsectional- hydraulic fracturing can effectively prevent and control the intensive ground pressure disaster of the overlying remnant coal pillar in shallow and close seams. © 2023 Coal Science and Technology. All rights reserved.
引用
收藏
页码:46 / 54
页数:8
相关论文
共 20 条
  • [1] ZHENG Kaige, YANG Junzhe, LI Bingang, Et al., Collapse filling-based technology of weakening and danger-solving by staged fracturing in hard roof[J], Coal Geology & Exploration, 49, 5, pp. 77-87, (2021)
  • [2] FU Xingyu, LI Hongyan, LI Fengming, Et al., Mechanism and prevention of strong strata behaviors induced by the concentration coal pillar of a room mining goaf[J], Journal of China Coal Society, 41, 6, pp. 1375-1383, (2016)
  • [3] LI Haodang, YANG Hanhong, ZHANG Bin, Et al., Control study of strong strata behaviors during the fully mechanized working face out of con-centrated coal pillar in a shallow depth seam in proximity beneath a room mining goaf[J], Journal of China Coal Society, 40, S1, pp. 6-11, (2015)
  • [4] TIAN Cheng, LIU Yingjie, ZHOU Haifeng, Technology of fully-mechanized coal mining face passing through overburden concentrated coal pillar and goaf[J], Coal Science and Technology, 42, 8, pp. 125-128, (2014)
  • [5] ZHENG Kaige, Permeability improving technology by sectional hydraulic fracturing for comb-like long drilling in floor of crushed and soft coal seam with low permeability, Journal of Mining & Safety Engineering, 37, 2, pp. 272-281, (2020)
  • [6] YANG Junzhe, ZHENG Kaige, ZHAO Jizhan, Et al., Research on fracturing treatment technology of concentrated stress disaster by the overlying coal pillar in close distance shallow seam.[J], Mining Safety& Environmental Protection, 47, 4, pp. 82-87, (2020)
  • [7] YANG Junzhe, WANG Zhenrong, LYU Qingxu, Et al., Application of advanced regional treatment technology of hard roof in Buertai Coal Mine of Shendong Coal Group[J], Coal Geology & Exploration, 50, 2, pp. 17-23, (2022)
  • [8] DU Junwu, HUANG Qingxiang, Overburden structure evolution and coal pillar stability analysis with different offset distance of coal pillars in shallow multi-seam[J], Journal of Mining and Strata Control Engineering, 4, 1, pp. 16-24, (2022)
  • [9] WU Wenda, Study on mechanism and control of the support crushing disaster caused by interactive failure of upper residual pillars in shallow multiple coal seams, (2020)
  • [10] ZHANG Wei, Study on prevention and control technology of rock burst in isolated island working face under coal pillar left in overlying goaf, (2021)