基于地质响应特征的综放工作面过陷落柱支护参数优化方法

Optimization Method for Support Parameters of Fully Mechanized Caving Face Passing through Collapse Columns Based on Geological Response Characteristics

  • 摘要: 针对15302综放工作面穿越NDX24陷落柱时顶板完整性突变引发的支护超载与围岩失稳问题,基于“结构突变-应力响应”理论,构建以岩体地质响应特征为核心的支护参数优化路径。通过钻探取芯、波速测试与GSI分级分析,识别出“柱缘破裂-柱核松散”二元结构,结合三维初选矩阵确定支护初值;采用FLAC3D数值模拟设计“四因素三水平”正交试验,经熵权-TOPSIS模型优选支护参数组合。结果表明,优化组合(180 kN预紧力、8.0 m锚固、1.0 m排距、15 mm让压)可使顶板下沉与两帮移近量分别降低30.8%与28.1%,吨煤掘进成本下降9.6%。该研究为陷落柱区域支护设计提供定量化、可推广的优化方法与现场验证依据。

     

    Abstract: Aiming at the problems of support overload and surrounding rock instability caused by the mutation of roof integrity during the 15302 fully mechanized caving face passing through the NDX24 collapse column, based on the theory of "structural mutation - stress response", a support parameter optimization path with the geological response characteristics of the rock mass as the core is constructed. Through drilling and core extraction, wave velocity testing, and GSI graded analysis, the binary structure of "column edge fracture - column core looseness" is identified, and the initial support value is determined by combining 3D primary selection matrix; FLAC3D numerical simulation is adopted to design a orthogonal test of "four factor three-level", the combination of support parameters is optimized and selected through entropy weight - TOPSIS model. The results show that the optimized combination (180 kN pretension, 8.0 m anchorage, 1.0 m row spacing, 15 mm yielding) can reduce the roof subsidence and the displacement amount of two sides by 30.8% and 28.1%, respectively, and reduce the excavation cost by 9.6% per ton of coal. This research provides a quantitative and scalable optimization method and on-site verification basis for the support design of collapsed column areas.

     

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