风积沙箱式充填体压实机理及密实度调控机制研究

    Study on compaction mechanism and density control mechanism of aeolian sand-gabion backfill

    • 摘要: 采空区充填是控制覆岩移动的有效方式,而散状充填材料的压实度是影响充填效果的重要因素之一。本文根据西北荒漠化矿区地表缺水多沙且生态环境脆弱的特点,提出了采空区内风积沙箱式充填的煤沙置换设想,并对风积沙箱式充填体的压实机理及密实度调控机制进行了研究。首先,采集新疆准东五彩湾矿区地表风积沙试样进行了实验室三轴压缩试验,用于分析干式风积沙在柔性网箱约束下的固结特性,结果发现风积沙箱式充填体存在临界承载强度的现象,且侧向约束强度越大其临界承载强度也越大。其次,为了进一步解释上述现象发生的机理,建立了能够同时模拟网箱结构和风积沙颗粒材料的FLAC-PFC耦合数值模型,在完全复现上述物理三轴压缩试验结果的基础上,从风积沙颗粒间孔隙度和力链的微观角度划分了风积沙箱式充填体在轴向压缩过程中密实度变化的三个过程,认为风积沙箱式充填体存在临界承载强度的原因是其内部风积沙存在临界最大压实度。再次,结合井下采空区有限的充填作业空间和作业时间,提出了风积沙箱式充填体表面振动压实工艺,并通过对振动参数下的风积沙箱式充填体临界最大压实度的模拟分析,提出了最优的振动压实参数组合。最后,对不同密实度的风积沙进行了采空区充填数值模拟试验,并借此分析对于上覆岩层的支护作用,从而为风积沙箱式充填体在采空区内充填工艺提供理论参考。

       

      Abstract: Gob filling is an effective way to control overburden movement, and the compaction degree of loose filling material is one of the important factors affecting the filling effect. In this paper, based on the characteristics of the lack of surface water, abundant sand and fragile ecological environment in the northwest desertification mining area, an aeolian sand-gabion backfill scheme is proposed for goaf replacement, and the compaction mechanism and density control mechanism of the aeolian sand-gabion backfill are studied. Firstly, a laboratory triaxial consolidation test is conducted on the aeolian sand samples on the surface of the Wucaiwan Mining Area in Eastern Xinjiang to analyze the consolidation characteristics of dry aeolian sand under flexible net confinement. The results show that there is a critical bearing strength in the aeolian sand-gabion backfill, and the greater the lateral constraint strength, the greater the critical bearing strength. Secondly, to further explain the mechanism of the above phenomenon, a FLAC-PFC coupling numerical model that can simultaneously simulate the net structure, and aeolian sand particle materials is established. Based on completely reproducing the above physical triaxial consolidation test results, three processes of density change of the aeolian sand-gabion backfill during axial compression are divided from the microscopic perspective of aeolian sand particle porosity and force chain, and it is believed that the reason for the critical bearing strength of the aeolian sand-gabion backfill is that there is a critical maximum compactness of the aeolian sand inside it. Thirdly, combined with the limited space and time of backfill operation in the underground goaf, the surface vibration compaction technology for aeolian sand-gabion backfill is proposed. Through the simulation analysis of the critical maximum compaction degree of aeolian sand-gabion backfill under vibration parameters, the optimal combination of vibration compaction parameters is proposed. Finally, the numerical simulation test of aeolian sand filling in goaf with different density is carried out, and the supporting effect on overlying strata is analyzed, which provides theoretical reference for aeolian sand box filling process in goaf.

       

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