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YU Jian-hao, ZHANG Rui-xin, BA Quan-guang, REN Ji-kai, WANG Zhong-wu. Numerical Simulation of Coal Waste Backfilling Mining in Steep Coal Seam[J]. Safety in Coal Mines, 2013, 44(11): 41-43.
Citation: YU Jian-hao, ZHANG Rui-xin, BA Quan-guang, REN Ji-kai, WANG Zhong-wu. Numerical Simulation of Coal Waste Backfilling Mining in Steep Coal Seam[J]. Safety in Coal Mines, 2013, 44(11): 41-43.

Numerical Simulation of Coal Waste Backfilling Mining in Steep Coal Seam

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  • Published Date: November 19, 2013
  • According to the complicated geological conditions of steep coal seam, the No.5 seam in west fourth mining area of -410 m level in Muchengjian Mine was taken as research object, the discrete element numerical simulation method was used to simulate the mining process of steep flexible shield supports. The results show that the stress-strain of coal seam roof and floor and ventilation roadway showed significantly improved with the increasing of filling rate; the stress concentration region was decreased, which protected ventilation roadway from the influence of mining and improved the safety of backfill mining.
  • [1]
    张吉雄,缪协兴,郭广礼. 矸石(固体废物)直接充填采煤技术发展现状[J].采矿与安全工程学报, 2009,26(4):395-401.
    [2]
    谢东海,冯涛,赵伏军.我国急倾斜煤层开采的现状及发展趋势[J].科技信息,2007(14):211-213.
    [3]
    李栖凤.急倾斜煤层开采[M].北京:煤炭工业出版社,1984:284-288.
    [4]
    汪成兵,张盛,勾攀峰,等.急倾斜煤层开采上覆岩层运动规律模拟研究[J].焦作工学院学报:自然科学版, 2003,5(3):165-167.
    [5]
    孙希奎,李学华.利用歼石充填置换开采条带煤柱的新技术[J].煤炭学报, 2008, 33(3): 259-263.
    [6]
    余伟健,冯涛,王卫军,等.充填开采的协作支撑系统及其力学特征[J].岩石力学与工程学报,2012,31(5):2803-2813.
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