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下向进路充填采矿法采场结构参数与充填体强度协同优化研究

Collaborative optimization of stope structure parameters and backfill strength in downward drift filling mining methods

  • 摘要: 针对下向进路充填采矿法在复杂矿体中结构参数与充填体强度不协同的问题,以毛坪铅锌矿为背景,开展二者协同优化研究,旨在为矿山安全扩产提供依据。研究采用Flac3D软件建立三维数值模型,模拟3.5 m×3.0 m、4.5 m×4.0 m和5.5 m×5.0 m 3种进路尺寸的回采过程,并基于二分法强度搜索,确定了不同尺寸下打底层充填体的临界强度需求。结果表明:进路尺寸为3.5 m×3.0 m时,临界内聚力为350 kPa,对应强度0.96 MPa;尺寸增至4.5 m×4.0 m时,临界内聚力为410 kPa,强度需求为1.13 MPa;尺寸扩大至5.5 m×5.0 m时,临界内聚力达620 kPa,强度需求升至1.71 MPa。结合矿山实测充填体平均强度4.41 MPa与浮动安全系数3.6,计算得到3种尺寸下实际强度需求分别为3.46 MPa、4.07 MPa和6.16 MPa。分析表明,在当前充填体强度条件下,进路由3.5 m×3.0 m扩大至4.5 m×4.0 m可行,但继续扩大至5.5 m×5.0 m则强度不足。研究明确了进路尺寸扩大与充填体强度的定量关系,为类似条件下进路参数优化与充填配比设计提供了具体依据,对实现安全高效开采具有指导意义。

     

    Abstract: In response to the lack of synergy between structural parameters and backfill strength in downward drift filling mining methods applied to complex ore bodies, a collaborative optimization study was conducted based on the Maoping lead-zinc mine to provide a foundation for safe mine expansion. A three-dimensional numerical model was built by employing Flac3D software to simulate the mining processes of three drift sizes, including 3.5 m×3.0 m, 4.5 m×4.0 m, and 5.5 m×5.0 m. By adopting a bisection-based strength search method, the critical strength requirements of the bottom-layer backfill for each drift size were determined. Results indicate that under the drift size of 3.5 m×3.0 m, the critical cohesion is 350 kPa, corresponding to the uniaxial compressive strength of 0.96 MPa. When the drift size increases to 4.5 m×4.0 m, the critical cohesion rises to 410 kPa, with the strength requirement of 1.13 MPa. When the drift size grows to 5.5 m×5.0 m, the critical cohesion reaches 620 kPa, with the strength requirement of 1.71 MPa. By integrating the measured average backfill strength of 4.41 MPa and safety factor of 3.6, the actual required strength for the three drift sizes was calculated as 3.46 MPa, 4.07 MPa, and 6.16 MPa, respectively. Analysis reveals that in the current backfill strength conditions, expanding the drift size from 3.5 m×3.0 m to 4.5 m×4.0 m is feasible, whereas further expansion to 5.5 m×5.0 m results in insufficient strength. This study elucidates the quantitative relationship between drift size expansion and backfill strength, thus providing concrete guidance for optimizing drift parameters and backfill mixture design in similar conditions, and holding guiding significance for safe and efficient mining.

     

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