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黄金科学技术 ›› 2021, Vol. 29 ›› Issue (3): 421-432.doi: 10.11872/j.issn.1005-2518.2021.03.183

• 采选技术与矿山管理 • 上一篇    下一篇

基于采场结构参数优化后的充填体强度数值模拟

徐路路(),张钦礼(),冯如   

  1. 中南大学资源与安全工程学院,湖南 长沙 410083
  • 收稿日期:2020-10-10 修回日期:2021-01-05 出版日期:2021-06-30 发布日期:2021-07-14
  • 通讯作者: 张钦礼 E-mail:2298499523@qq.com;zhangqinlicn@126.com
  • 作者简介:徐路路(1994-),男,安徽阜阳人,硕士研究生,从事采矿技术研究工作。2298499523@qq.com
  • 基金资助:
    国家自然科学基金项目“充填料浆高处倾落与受限空间流动形态及强度演变力学特征”(52074352)

Numerical Simulation of Backfill Strength Based on Optimization Results of Stope Structural Parameters

Lulu XU(),Qinli ZHANG(),Ru FENG   

  1. School of Resources and Safety Engineering,Central South University,Changsha 410083,Hunan,China
  • Received:2020-10-10 Revised:2021-01-05 Online:2021-06-30 Published:2021-07-14
  • Contact: Qinli ZHANG E-mail:2298499523@qq.com;zhangqinlicn@126.com

摘要:

合理的采场结构参数能够有效控制岩体位移,改善围岩应力分布状态,提高采场稳定性。为确定高尔奇铅锌矿采场最优结构参数,根据矿山地质条件和矿体赋存状态,建立5种采场结构模型,通过有限元软件ANSYS进行数值模拟,综合考虑顶板、间柱和充填体柱的拉应力、压应力及位移变化,引入安全系数对各模拟方案进行对比分析。结果表明:拉应力在模型边界发生应力集中现象;压应力侧帮靠近采场两端处发生压应力集中现象;随着空区跨度的增大,位移量呈逐步增大趋势;综合安全、经济和技术等因素,最终优选出的采场结构参数为75.0 m×6.0 m×1.8 m。但由于矿山自身条件制约,矿山过渡阶段拟采用的采场结构参数:矿房为75.0 m×3.5 m×1.8 m,矿柱为75.0 m×6.0 m×1.8 m。为确定与之匹配的充填体强度,再次进行数值模拟,确定最佳充填体强度范围为1.2~1.4 MPa。矿山过渡阶段的实践表明,该方案提供了安全的作业条件,取得了良好的经济效益,对于类似矿山开采具有一定的借鉴意义。

关键词: 采场结构参数, 数值模拟, 充填体强度, ANSYS仿真模拟, 应力分布, 位移变化

Abstract:

With the construction of exploration and mining engineering and mining preparation engineering,the industrial orebody is gradually exposed.Compared with the exploration report,the shape of the orebody has changed greatly:(1)The thickness of the orebody becomes thinner and the grade is improved;(2)The stability of the orebody is poor,especially the soft and weak fault gouge exists in the hanging wall of most sections of the orebody.Based on the deterioration of ore occurrence conditions,if the open stope method recommended by the original preliminary design continues to be used,it will lead to low recovery rate,high dilution rate,poor safety and high safety production pressure.In order to adapt to the changed orebody occurrence conditions and solve the above-mentioned safety and economic problems existing in the preliminary design recommended open stope method,the open stope method is changed into a filling method with better safety,higher recovery rate and more environment-friendly.At the same time,reasonable stope structure parameters can effectively control the displacement of rock mass,improve the stress distribution of surrounding rock,and improve the stability of stope.In order to determine the optimal structural parameters of the stope in Gaoerqi lead zinc mine,five stope structure models were established according to the mine geological conditions and orebody occurrence state. The numerical simulation was carried out by the finite element software ANSYS.Comprehensive consideration of the tensile stress, compressive stress and displacement changes of the roof,inter-column,and filling body column,the safety factor is introduced to compare and analyze the simulation schemes.The results show that:Tensile stress occurs stress concentration at the boundary of the model;Compressive stress concentration occurs near the two ends of the stope;Displacement increases gradually with the increase of goaf span;The final optimized stope structure parameter is 75.0 m×6.0 m×1.8 m according to the factors of safety,economy and technology.However,due to the fact that the filling station has not been built,the goaf of one-step stoping can not be filled in time,the exposure time of roof is long,and the risk of roof collapse increases.It is proposed to adopt the one-step 3.5 m-wide strip tight mining method.Due to the increase of stope width in one step,the requirements for the strength of filling body have changed.The stope structure parameters to be adopted in the transition stage of the mine are:Room 75.0 m×3.5 m×1.8 m,pillar 75.0 m × 6.0 m×1.8 m.In order to determine the matching strength of filling body,the numerical simulation was carried out again,and the optimal strength range of filling body was determined to be 1.2~1.4 MPa.The practice in the transition stage of the mine shows that the scheme provides safe operation conditions and achieves good economic benefits,which has reference significance for similar mines.

Key words: stope structure parameters, numerical simulation, filling body strength, ANSYS simulation, stress distribution, displacement change

中图分类号: 

  • TD853

图1

小分段分条密接充填采矿法示意图"

表1

力学参数数据汇总"

组别弹性模量Em/GPa抗压强度σm/MPa抗拉强度σt/MPa密度/(kg·m-3泊松比u黏结力Cm/MPa内摩擦角φm/(°)
上盘4.4416.64.52 8000.278.1635.0
矿体7.9735.28.43 1600.3612.1038.0
下盘5.1318.74.92 8000.339.1036.0
充填体0.191.160.21 9400.240.2037.7

表2

数值模拟方案"

方案编号长度/m宽度/m高度/m暴露面积/m2
17541.8300
27561.8450
37581.8600
475101.8750
575121.8900

图2

数值模型示意图"

表3

各模型顶板、矿柱和充填体柱压应力和拉应力模拟数值汇总"

状态区域方案编号模拟压应力值/Pa许用压应力值/Pa安全系数K稳定性模拟拉应力值/Pa许用拉应力值/Pa安全系数K稳定性

顶板1-11.53E+051.66E+07108.55稳定1.83E+054.50E+0624.59稳定
1-22.04E+051.66E+0781.40稳定2.58E+054.50E+0617.44稳定
1-32.92E+051.66E+0756.86稳定5.05E+054.50E+068.91稳定
1-49.76E+051.66E+0717.01稳定9.55E+054.50E+064.71稳定
1-53.20E+061.66E+075.19稳定2.70E+064.50E+061.66稳定
矿柱1-15.25E+063.52E+076.70稳定3.12E+068.40E+062.69稳定
1-26.34E+063.52E+075.55稳定4.06E+068.40E+062.07稳定
1-39.55E+063.52E+073.69稳定5.53E+068.40E+061.52稳定
1-42.40E+073.52E+071.47临界9.07E+068.40E+060.93不稳定
1-53.58E+073.52E+070.98不稳定1.10E+078.40E+060.77不稳定

顶板1-11.93E+051.66E+0786.19稳定5.70E+054.50E+067.89稳定
1-24.24E+051.66E+0739.19稳定8.80E+054.50E+065.11稳定
1-35.03E+051.66E+0733.03稳定1.45E+064.50E+063.10稳定
1-48.90E+051.66E+0718.66稳定3.88E+064.50E+061.16临界
1-51.07E+061.66E+0715.57稳定4.55E+064.50E+060.99不稳定

充填

体柱

1-11.15E+051.16E+0610.06稳定9.60E+042.00E+052.08稳定
1-21.47E+051.16E+067.88稳定1.13E+052.00E+051.77稳定
1-32.21E+051.16E+065.24稳定1.53E+052.00E+051.31临界
1-43.01E+051.16E+063.85稳定1.96E+052.00E+051.02临界
1-57.81E+051.16E+061.48临界2.32E+052.00E+050.86不稳定

表4

各模型顶板、矿柱和充填体柱位移变形数值汇总"

模型回采矿房回采矿柱
顶板/m矿柱/m底板/m顶板/m充填 体柱/m底板/m
1-10.0078690.0062710.0044670.0143720.0129320.010385
1-20.0083260.0070820.0049210.0212350.0156870.011850
1-30.0096030.0090450.0052390.0235240.0202930.014055
1-40.0217910.0237610.0124670.0290200.0248660.019020
1-50.0282760.0270800.0192190.0403540.0276300.030965

图3

模型1-1顶板、矿柱及底板最大拉应力、压应力云图"

图4

模型1-1顶板、充填体柱及底板最大拉应力、压应力云图"

图5

数值模型图"

表5

数值模拟方案参数"

方案编号分步矿柱宽度/m采场长度/m采空区高度/m充填体28 d强度/MPa
16751.81.10E+06
26751.81.20E+06
36751.81.30E+06
46751.81.40E+06
55751.81.00E+06
65752.81.10E+06
75753.81.20E+06
85754.81.30E+06

表6

各模型充填体柱压应力、拉应力数值汇总"

状态分步矿柱宽度/m方案 编号模拟压应力值/Pa许用压应力值/Pa安全 系数稳定性模拟拉应力值/Pa许用拉应力值/Pa安全 系数稳定性
分步矿柱回采611.76E+051.10E+066.25稳定1.54E+052.30E+051.49临界
21.97E+051.20E+066.09稳定1.62E+052.60E+051.60稳定
32.01E+051.30E+066.47稳定1.84E+052.90E+051.58稳定
42.09E+051.40E+066.70稳定1.83E+053.20E+051.75稳定
551.47E+051.00E+066.80稳定1.44E+052.00E+051.39临界
61.55E+051.10E+067.10稳定1.51E+052.30E+051.52稳定
71.61E+051.20E+067.45稳定1.63E+052.60E+051.60稳定
81.76E+051.30E+067.39稳定1.72E+052.90E+051.69稳定

图6

各模型充填体柱最大拉应力和压应力云图"

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