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ZHANG Shoubao, HE Jiyuan, SONG Yunwei, HE Xiao, ZHANG Zhenyu, LI Dongdong, LI Yaozhi, GUO Ming. Analysis and practice of coal pillar width of gob-side entry driving based on neutral zone features[J]. Safety in Coal Mines, 2022, 53(7): 208-214.
Citation: ZHANG Shoubao, HE Jiyuan, SONG Yunwei, HE Xiao, ZHANG Zhenyu, LI Dongdong, LI Yaozhi, GUO Ming. Analysis and practice of coal pillar width of gob-side entry driving based on neutral zone features[J]. Safety in Coal Mines, 2022, 53(7): 208-214.

Analysis and practice of coal pillar width of gob-side entry driving based on neutral zone features

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  • Published Date: July 19, 2022
  • The coal pillar width is the main parameter of gob-side entry driving technology, which plays a key role in the success of roadway retention. The stability of the coal pillar can be described by the features of the neutral zone of the horizontal deformation of the coal pillar. The size of the neutral zone and the change of the bearing capacity can characterize the stability of the coal pillar. Based on the typical engineering background and the neutral zone theory of the coal pillars of roadway protection, a numerical model was established to simulate and analyze the change characteristics of the shape of the neutral zone and the bearing capacity in the coal pillars with different widths; as the width of the coal pillars increases, the width of the neutral zone in the coal pillars gradually increases, and the bearing capacity of the coal pillars also gradually increases, but the proportion of the neutral zone width first increases, then decreases and then increases. The increase rate of the coal pillar bearing capacity first increases and then decreases. The coal pillar could keep stability when the width is 6-7 m. The comprehensive theoretical calculation, numerical simulation results and field conditions determine that the reasonable width of the coal pillar is 6 m.
  • [1]
    谢和平,吴立新,郑德志.2025年中国能源消费及煤炭需求预测[J].煤炭学报,2019,44(7):1949-1960.

    XIE Heping, WU Lixin, ZHENG Dezhi. Prediction on the energy consumption and coal demand of China in 2025[J]. Journal of China Coal Society, 2019, 44(7): 1949-1960.
    [2]
    兰君.中国煤炭产业转型升级与空间布局优化研究[D].北京:中国地质大学(北京),2019.
    [3]
    周少统.我国煤炭供需趋势及开发强度研究[J].煤炭科学技术,2020(S1):85-88.

    ZHOU Shaotong. Research on coal supply and demand trend and development intensity of China[J]. Coal Science and Technology, 2020(S1): 85-88.
    [4]
    李德海,赵忠明,李东升.条带煤柱强度弹塑性理论公式的修正[J].矿冶工程,2004(3):16-17.

    LI Dehai, ZHAO Zhongming, LI Dongsheng. Theoretical formula of elast-plasticity of strip coal pillar—A revision[J]. Mining and Metallurgical Engineering, 2004(3): 16-17.
    [5]
    刘洋,柴学周,李竞生.相邻工作面防水煤岩柱优化研究[J].煤炭学报,2009,34(2):239-242.

    LIU Yang, CHAI Xuezhou, LI Jingsheng. Optimization study on waterproofing coal and rock pillar between two working face[J]. Journal of China Coal Society, 2009, 34(2): 239-242.
    [6]
    谷拴成,杨超凡,王盼,等.考虑煤岩体成拱效应时煤柱塑性区宽度确定[J].煤矿安全,2021,52(1):177.

    GU Shuancheng, YANG Chaofan, WANG Pan, et al. Determination of width of coal pillar plastic zone considering arch effect of coal-rock mass[J]. Safety in Coal Mines, 2021, 52(1): 177.
    [7]
    尹大伟,陈绍杰,邢文彬,等.不同加载速率下顶板-煤柱结构体力学行为试验研究[J].煤炭学报,2018,43(5):1249.

    YIN Dawei, CHEN Shaojie, XING Wenbin, et al. Experimental study on mechanical behavior of roof-coal pillar structure body under different loading rates[J]. Journal of China Coal Society, 2018, 43(5): 1249.
    [8]
    郭军,张科学,王襄禹,等.基于煤体损伤演化的煤柱承载规律与宽度确定研究[J].煤矿安全,2020,51(8):48-57.

    GUO Jun, ZHANG Kexue, WANG Xiangyu, et al. Research on determination of coal pillar bearing law and width based on coal damage evolution[J]. Safety in Coal Mines, 2020, 51(8): 48-57.
    [9]
    刘洋,石平五,张壮路.长壁留煤柱支撑法开采“顶板-煤柱”结构分析[J].西安科技大学学报,2006(2):161-166.

    LIU Yang, SHI Pingwu, ZHANG Zhuanglu. Structural analysis of “roof-pillars” on longwall remaining coal pillars support mining[J]. Journal of Xi’an University of Science and Technology, 2006(2): 161-166.
    [10]
    侯朝炯,李学华.综放沿空掘巷围岩大、小结构的稳定性原理[J].煤炭学报,2001(1):1-7.

    HOU Chaodong, LI Xuehua. Stability principle of big and small structures of rock surrounding roadway driven along goaf in fully mechanized top coal caving face[J]. Journal of China Coal Society, 2001(1): 1-7.
    [11]
    赵鹏翔,李刚,李树刚,等.倾斜厚煤层沿空掘巷煤柱力学特征的尺寸效应分析[J].采矿与安全工程学报,2019,36(6):1120-1127.

    ZHAO Pengxiang, LI Gang, LI Shugang, et al. Analysis of size effect of mechanical characteristics of coal pillars gob-side entry in inclined thick coal seam[J].Journal of Mining & Safety Engineering, 2019, 36(6):1120-1127.
    [12]
    李向鹏,张东峰,闫建兵.基于侧限抗压试验的窄煤柱力学性质研究[J].煤矿安全,2018,49(10):58.

    LI Xiangpeng, ZHANG Dongfeng, YAN Jianbing. Research on mechanical properties of narrow coal pillars based on lateral confinement compression test[J]. Safety in Coal Mines, 2018, 49(10): 58.
    [13]
    郭文兵,邓喀中,邹友峰.条带煤柱的突变破坏失稳理论研究[J].中国矿业大学学报,2005(1):77-81.

    GUO Wenbing, DENG Kazhong, ZOU Youfeng. Study on failure and instability of strip coal pillar by catastrophic theory[J]. Journal of China University of Mining & Technology, 2005(1): 77-81.
    [14]
    冯国瑞,白锦文,史旭东,等.遗留煤柱群链式失稳的关键柱理论及其应用展望[J].煤炭学报,2021,46(1):164-179.

    FENG Guorui, BAI Jinwen, SHI Xudong, et al. Key pillar theory in the chain failure of residual coal pillars and its application prospect[J]. Journal of China Coal Society, 2021, 46(1): 164-179.
    [15]
    杨科,谢广祥,常聚才.煤柱宽度对巷道围岩稳定性影响分析[J].地下空间与工程学报,2009(5):991.

    YANG Ke, YANG Guangxiag, CHANG Jucai. Study on the stability of rock surrounding gateway with different coal-pillar widths[J]. Chinese Journal of Underground Space and Engineering, 2009(5): 991.
    [16]
    郑西贵,姚志刚,张农.掘采全过程沿空掘巷小煤柱应力分布研究[J].采矿与安全工程学报,2012,29(4):459-465.

    ZHENG Xigui, YAO Zhigang, ZHANG Nong. Stress distribution of coal pillar with gob-side entry driving in the process of excavation & mining[J]. Journal of Mining & Safety Engineering, 2012, 29(4): 459-465.
    [17]
    许兴亮,李俊生,田素川,等.沿空掘巷小煤柱变形分析与中性面稳定性控制技术[J].采矿与安全工程学报,2016,33(3)481-486.

    XU Xingliang, LI Junsheng, TIAN Suchuan, et al. Deformation analysis and neutral plane stability control technology of small coal pillar with gob-side entry[J]. Journal of Mining & Safety Engineering, 2016, 33(3)481-486.
    [18]
    何富连,肖鹏,来永辉,等.基于偏应力第三不变量的窄煤柱合理宽度确定[J].煤矿安全,2018,49(3):44-47.

    HE Fulian, XIAO Peng, LAI Yonghui, et al. Reasonable width of narrow coal pillar based on the third invariant of deviatoric stress[J]. Safety in Coal Mines, 2018, 49(3): 44-47.
    [19]
    马金宝,王胜,宋宗武.基于煤岩应力监测的深井沿空掘巷煤柱宽留设研究[J].煤炭科学技术,2017,45(8):121-127.

    MA Jinbao, WANG Sheng, SONG Zongwu. Research on width of coal pillar of roadway driving along goaf based on coal-rock stress monitoring[J].Coal Science and Technology, 2017, 45(8): 121-127.
    [20]
    鲍永生.复杂特厚煤层综放工作面煤柱应力分布规律研究[J].煤炭科学技术,2014,42(3):21-24.

    BAO Yongsheng. Study on stress distribution laws of coal pillar of fully-mechanized top coal caving face in complicated ultra thick seam[J]. Coal Science and Technology, 2014, 42(3): 21-24.
    [21]
    钱鸣高,石平五.矿山压力与岩层控制[M].徐州:中国矿业大学出版社,2010.
    [22]
    辛亚军.基于屈服煤柱留设的巷道围岩控制技术[M].北京:煤炭工业出版社,2017.
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