不同加载方式下分层胶结充填体强度特性分析

Investigation into the Strength Properties of Layered Cemented Backfill under Various Loading Modes

  • 摘要: 随着深部开采常态化及充填采矿法的大规模应用,井下采场往往受限于制备能力与充填工艺需进行分次分层浇筑,导致充填体内部不可避免地形成分层界面,成为影响采场长期稳定的关键薄弱环节。为探明分层胶结充填体的力学强度演化规律,保障井下采场充填体长期承载稳定,以不同质量浓度、分层数及分层界面倾角的全尾砂胶结充填体为研究对象,开展常规单轴压缩与递增循环荷载压缩对比试验,系统分析多因素耦合对充填体强度的影响规律。结果表明:分层界面的存在显著削弱了充填体承载能力,充填体在常规压缩与循环荷载压缩下的峰值强度均随分层数增多呈逐步降低趋势,三分层试件较均质试件最高降幅达28.42%;二分层试件强度随分层界面倾角增大持续弱化,倾角10°时最大降幅超12%;循环荷载压缩下充填体峰值强度优于常规单轴压缩,增幅达7%−21%,源于卸载弹性回弹有效缓解内部应力集中并压密微缺陷;且质量浓度越高,充填体强度与抗劣化能力越优。研究结果揭示了分层界面与加载方式对充填体力学性能的综合影响机制,可为矿山分层充填工艺优化、配比科学设计及采场稳定性评价提供可靠的试验与理论支撑。

     

    Abstract: With the normalization of deep mining and the large−scale application of backfill mining methods, underground stopes are often constrained by preparation capacity and backfilling processes, necessitating multi−stage layered pouring. This inevitably leads to the formation of layered interfaces within the backfill, which have become critical weak links affecting the long−term stability of stopes. To investigate the evolution law of mechanical strength of layered cemented backfill and ensure the long−term load−bearing stability of backfill in underground stopes, full tailings cemented backfill with different mass concentrations, numbers of layers, and layered interface dip angles was taken as the research object. Comparative tests of conventional uniaxial compression and incremental cyclic loading compression were carried out, and the influence law of multi−factor coupling on the backfill strength was systematically analyzed. The results show that the existence of layered interfaces significantly weakens the load−bearing capacity of the backfill. The peak strength of the backfill under both conventional compression and cyclic loading compression decreases gradually with the increase of the number of layers, with a maximum reduction of 28.42% for the three−layer specimen compared with the homogeneous specimen. The strength of the two−layer specimens continuously weakens with the increase of the layered interface dip angle, with a maximum reduction exceeding 12% at a dip angle of 10°. The peak strength of the backfill under cyclic loading compression is superior to that under conventional uniaxial compression, with an increase of 7%−21%. This enhancement is attributed to the elastic rebound during unloading, which effectively alleviates internal stress concentration and compacts micro−defects. Furthermore, the higher the mass concentration, the better the strength and anti−deterioration ability of the backfill. The research results reveal the comprehensive influence mechanism of layered interfaces and loading modes on the mechanical properties of backfill, and provide reliable experimental and theoretical support for the optimization of layered backfill processes, scientific mix proportion design, and stope stability evaluation in mines.

     

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