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LI Pengjie, YANG Feng, CHEN Haifu, et al. Study on failure law and stability control of overlying room coal pillar in shallow buried close distance coal seams mining[J]. Safety in Coal Mines, 2025, 56(3): 167−176. DOI: 10.13347/j.cnki.mkaq.20231538
Citation: LI Pengjie, YANG Feng, CHEN Haifu, et al. Study on failure law and stability control of overlying room coal pillar in shallow buried close distance coal seams mining[J]. Safety in Coal Mines, 2025, 56(3): 167−176. DOI: 10.13347/j.cnki.mkaq.20231538

Study on failure law and stability control of overlying room coal pillar in shallow buried close distance coal seams mining

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  • Received Date: October 26, 2023
  • Revised Date: November 20, 2023
  • In order to study the instability and failure issues of overlying room coal pillar in shallow buried and close distance coal seams, and put forward the control method for coal pillar stability, the method of combining the mechanical properties test experiment of filing material and FLAC3D numerical simulation was used. The experimental investigation shows that when the pressure of compaction test reaches 15 MPa, the aeolian sand filling material will be basically dense; the mechanical properties test of aeolian sand-loess mixed material indicates that when the ratio of aeolian sand to loess is 1:0.4, the material has smaller deformation and stronger compressive capacity, which is used as the solid filling material in 2305 working face. In addition, when the 2305 working face is mined by caving method, the coal pillar has a large area of overall damage, the overall failure rate of the coal pillar is 93.7%. The overall failure rate of coal pillar is 88.6%, 14.9% and 11.4% when solid filling rate is 40%, 60% and 80%, respectively. Combined with the research results, the overall stability of coal pillar in overlying goaf can be effectively controlled when the filling rate is 60%.

  • [1]
    冯国瑞,张玉江,戚庭野,等. 中国遗煤开采现状及研究进展[J]. 煤炭学报,2020,45(1):151−159.

    FENG Guorui, ZHANG Yujiang, QI Tingye, et al. Status and research progress for residual coal mining in China[J]. Journal of China Coal Society, 2020, 45(1): 151−159.
    [2]
    王东昊,李文,张彬. 煤矿采空区失稳灾害防控技术研究现状及展望[J]. 煤矿安全,2020,51(3):188−193.

    WANG Donghao, LI Wen, ZHANG Bin. Present situation and prospect of research on prevention and control technologies of coal mine goaf instability disaster[J]. Safety in Coal Mines, 2020, 51(3): 188−193.
    [3]
    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.
    [4]
    冯国瑞,朱卫兵,李竹,等. 浅埋深蹬空底板煤柱群动态失稳机理及防治[J]. 煤炭学报,2022,47(1):200−209.

    FENG Guorui, ZHU Weibing, LI Zhu, et al. Dynamic collapse mechanism and prevention of shallow-buried pillar group underlying working seam floor in mined-out area[J]. Journal of China Coal Society, 2022, 47(1): 200−209.
    [5]
    冯国瑞,朱卫兵,白锦文,等. 浅埋近距离煤层开采超前煤柱群冲击失稳机制[J]. 煤炭学报,2023,48(1):114−125.

    FENG Guorui, ZHU Weibing, BAI Jinwen, et al. Shocking failure mechanism of advanced coal pillars under the mining influence of shallow-buried closed distance coal seams[J]. Journal of China Coal Society, 2023, 48(1): 114−125.
    [6]
    王方田,屠世浩,李召鑫,等. 浅埋煤层房式开采遗留煤柱突变失稳机理研究[J]. 采矿与安全工程学报,2012,29(6):770−775.

    WANG Fangtian, TU Shihao, LI Zhaoxin, et al. Mutation instability mechanism of the room mining residual pillars in the shallow depth seam[J]. Journal of Mining & Safety Engineering, 2012, 29(6): 770−775.
    [7]
    朱卫兵,许家林,陈璐,等. 浅埋近距离煤层开采房式煤柱群动态失稳致灾机制[J]. 煤炭学报,2019,44(2):358−366.

    ZHU Weibing, XU Jialin, CHEN Lu, et al. Mechanism of disaster induced by dynamic instability of coal pillar group in room-and-pillar mining of shallow and close coal seams[J]. Journal of China Coal Society, 2019, 44(2): 358−366.
    [8]
    汪北方,刘春保,梁冰,等. 极近距离厚煤层房式采空区下综放开采覆岩破断失稳规律研究[J]. 采矿与安全工程学报,2020,37(6):1180−1187.

    WANG Beifang, LIU Chunbao, LIANG Bing, et al. Roof fracture and instability law of overlying strata in fully mechanized caving mining in ultra-close thick coal seams under the room mining goaf[J]. Journal of Mining & Safety Engineering, 2020, 37(6): 1180−1187.
    [9]
    SUN Q, ZHANG J X, ZHOU N. Study and discussion of short-strip coal pillar recovery with cemented paste backfill[J]. International Journal of Rock Mechanics and Mining Sciences, 2018, 104: 147−155. doi: 10.1016/j.ijrmms.2018.01.031
    [10]
    ZHANG Jixiong,HUANG Peng,ZHANG Qiang,et al. Stability and control of room mining coal pillars: Taking room mining coal pillars of solid backfill recovery as an example[J]. Journal of Central South University, 2017, 24(5): 1121−1132.
    [11]
    LIU H F, SUN Q, ZHOU N, et al. Risk assessment and control strategy of residual coal pillar in room mining: Case study in ecologically fragile mining areas, China[J]. Sustainability, 2021, 13(5): 2712. doi: 10.3390/su13052712
    [12]
    黄庆享,王林涛,杜君武,等. 浅埋极近距采空区下相向开采房柱采空区煤柱稳定性分析[J]. 采矿与安全工程学报,2022,39(1):118−125.

    HUANG Qingxiang, WANG Lintao, DU Junwu, et al. Stability of coal pillars in room-and-pillar goaf with opposite mining under ultra-close shallow goafs[J]. Journal of Mining & Safety Engineering, 2022, 39(1): 118−125.
    [13]
    朱德福,屠世浩,王方田,等. 浅埋房式采空区煤柱群稳定性评价[J]. 煤炭学报,2018,43(2):390−397.

    ZHU Defu, TU Shihao, WANG Fangtian, et al. Stability evaluation on pillar system of room and pillar mining in goaf at shallow depth seam[J]. Journal of China Coal Society, 2018, 43(2): 390−397.
    [14]
    屠世浩,窦凤金,万志军,等. 浅埋房柱式采空区下近距离煤层综采顶板控制技术[J]. 煤炭学报,2011,36(3):366−370.

    TU Shihao, DOU Fengjin, WAN Zhijun, et al. Strata control technology of the fully mechanized face in shallow coal seam close to the above room-and-pillar gob[J]. Journal of China Coal Society, 2011, 36(3): 366−370.
    [15]
    解兴智. 浅埋煤层房柱式采空区下长壁开采矿压显现特征[J]. 煤炭学报,2012,37(6):898−902.

    XIE Xingzhi. Study on the characteristics of strata behavior in shallow seam longwall mining under the room-and-pillar mining goaf[J]. Journal of China Coal Society, 2012, 37(6): 898−902.
    [16]
    吴文达,柏建彪,王襄禹,等. 煤柱群下回采工作面强矿压显现机理研究[J]. 采矿与安全工程学报,2023,40(3):563−571.

    WU Wenda, BAI Jianbiao, WANG Xiangyu, et al. Study on mechanism of strong pressure behaviors in working face under residual coal pillars[J]. Journal of Mining & Safety Engineering, 2023, 40(3): 563−571.
    [17]
    杜锋,袁瑞甫,郑金雷,等. 浅埋近距离煤层煤柱下开采异常矿压机理[J]. 煤炭学报,2017,42(S1):24−29.

    DU Feng, YUAN Ruifu, ZHENG Jinlei, et al. Mechanism of abnormal strata pressure of mining under coal pillar in close distance shallow coal seams[J]. Journal of China Coal Society, 2017, 42(S1): 24−29.
    [18]
    卫斐,魏坤,孔鲁,等. 近距离房采煤柱下长壁工作面压架机理[J]. 煤矿安全,2016,47(7):51−54.

    WEI Fei, WEI Kun, KONG Lu, et al. Support crushing mechanism at longwall working face under close distance room mining pillars[J]. Safety in Coal Mines, 2016, 47(7): 51−54.
    [19]
    白正平,高振俊. 采空区遗留煤柱下开采动载矿压机理及防治技术研究[J]. 煤炭科学技术,2022,50(S1):23−30.

    BAI Zhengping, GAO Zhenjun. Research on dynamic load mine pressure mechanism and prevention technology of mining under leftover coal pillars of goaf[J]. Coal Science and Technology, 2022, 50(S1): 23−30.
    [20]
    徐敬民,朱卫兵,鞠金峰. 浅埋房采区下近距离煤层开采动载矿压机理[J]. 煤炭学报,2017,42(2):500−509.

    XU Jingmin, ZHU Weibing, JU Jinfeng. Mechanism of dynamic mine pressure occurring below adjacent upper chamber mining goaf with shallow cover depth[J]. Journal of China Coal Society, 2017, 42(2): 500−509.
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