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毛坪铅锌矿废石-尾砂协同充填技术研究

Collaborative backfilling technology using waste rock and tailings in Maoping Lead-Zinc Mine

  • 摘要: 为实现毛坪铅锌矿掘进废石与选矿尾砂资源化利用,开展不同废石掺量条件下的全尾砂-废石胶结充填材料性能试验研究。通过坍落度测试与单轴抗压强度试验,系统分析废石掺量、灰砂比、料浆浓度对充填料浆流动性及充填体力学性能的影响规律。结果表明:料浆流动性主要由料浆浓度决定,废石掺量与灰砂比的影响相对有限;充填体抗压强度随养护龄期、料浆浓度及灰砂比的提高而增大。掺入20 %~40 %废石可优化骨料级配,有效提升充填体强度,废石掺量提升至60 %后,充填体强度显著下降。综合性能测试结果可知,当灰砂比为1∶4或1∶5、料浆浓度不低于75 %时,充填体抗压强度可稳定超过4.5 MPa,满足现场工程使用要求,由此确定该矿山最优废石掺量为20 %~40 %。基于上述优选配比开展物理相似模拟试验,结果显示,在先铺废石后充填的施工工艺下,充填体强度沿料浆流动方向呈现先升高后降低的分布特征。本研究成果可为该矿山充填配比优化、现场施工工艺选择及同类矿山固废协同充填利用提供技术参考。

     

    Abstract: To promote the resource utilization of excavation waste rock and beneficiation tailings in Maoping Lead-Zinc Mine, experimental research was conducted on the performance of full tailings-waste rock cemented backfill materials with varying waste rock mixing ratios. Slump tests and uniaxial compressive strength tests were conducted to systematically analyze the influences of waste rock content, cement-tailings ratio, and slurry concentration on the flowability of backfill slurry and the mechanical properties of backfill. The results show that slurry flowability is mainly determined by slurry concentration, while waste rock content and cement-tailings ratio exert relatively limited effects. The compressive strength of backfill increases with increasing curing age, slurry concentration, and cement-tailings ratio. Mixing 20 %–40 % waste rock can optimize aggregate gradation and effectively improve the strength of backfill. However, when the waste rock content increases to 60 %, the strength of backfill decreases significantly. According to the comprehensive test results, when the cement-tailings ratio is 1∶4 or 1∶5, and the slurry concentration is no less than 75 %, the compressive strength of backfill steadily exceeds 4.5 MPa, which meets the on-site engineering requirements. Accordingly, the optimal waste rock content for the mine is determined to be 20 %–40 %. Physical similarity simulation tests were carried out based on the above optimized mix proportions. The results show that under the construction process of laying waste rock prior to slurry filling, the strength of backfill first increases and then decreases along the slurry flow direction. The research findings can provide technical references for mix proportion optimization of backfill, selection of on-site construction technologies in this mine, and collaborative filling utilization of solid wastes in similar mines.

     

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