Numerical Simulation of Backfill Strength Based on Optimization Results of Stope Structural Parameters
Received date: 2020-10-10
Revised date: 2021-01-05
Online published: 2021-07-14
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.
Lulu XU , Qinli ZHANG , Ru FENG . Numerical Simulation of Backfill Strength Based on Optimization Results of Stope Structural Parameters[J]. Gold Science and Technology, 2021 , 29(3) : 421 -432 . DOI: 10.11872/j.issn.1005-2518.2021.03.183
null | Chen Hui,Wang Teng,Ma Zhenqian,al et,2020.Optimization of structural parameters of gold stope under “three soft” conditions[J].China Mining,29(4):141-145. |
null | Ding Mingfei,Wang Zhuo,Wang Dawei,al et,2014.Optimization scheme of mining method for gently inclined extremely thin orebody[J].Gold Science and Technology,22(1):56-59. |
null | Fu Yuhua,Zhan Fei,Li Yong,2017.Study on structural parameter optimization in the stope combination of open pit and underground mining[J].China Mining,26(1):83-87. |
null | Gao Mingjie,Li Shouzheng,Wang Yin,al et,2013.Study of mining method for complicated inclined and thin vein of Jigezhuang gold mine in Shangdong Province[J].Gold Science and Technology,21(1):49-52. |
null | Guo Q F,Ren F H,Miao S J,al et,2012.Application of fuzzy comprehensive evaluation in stope structural parameters optimization[J].Applied Mechanics and Materials,256/257/258/259:271-275.DOI:10.4028/www.scientific.net/AMM.256-259.271. |
null | Lan Ming,Liu Zhixiang,Li Xibing,al et,2018.Optimization of stope structural parameters of secondary filling method in medium and deep hole caving stage[J].Journal of Central South University (Natural Science Edition),49(4):933-939. |
null | Li Qiyue,Liu Kai,Li Xibing,2016.Sublevel filling method for a heavy orebody in deep mining based on collaborative stoping[J].Journal of Engineering Science,38(11):1515-1521. |
null | Li X X,Li K G,2014.Optimization of stope structural parameters in phosphorite mine and its stability analysis[J].Applied Mechanics and Materials,580/581/582/583:1268-1272.DOI:10.4028/www.scientific.net/AMM.580-583.1268. |
null | Heidarzadeh S,Saeidi A, Rouleau A,2019.Evaluation of the effect of geometrical parameters on stope probability of failure in the open stoping method using numerical modeling[J].International Journal of Mining Science and Technology,29(3):399-408. |
null | Liu Dong,Shao Anlin,Jin Changyu,al et,2019.Numerical model building for broken ore body and optimization of stope structural parameters[J].Journal of Central South University(Natural Science Edition),50(2):437-444. |
null | Liu Ke,Zhang Mingwu,Wang Peng,2009.Research and application of open stope mining method without sill pillar[J].Mining Engineering,7(1):20-22. |
null | Long Keming,Wang Liguan,2015.Optimization of stope structural parameters based on ANSYS-R method[J].Gold Science and Technology,23(6):81-86. |
null | Ma Xiaoyun,2014.Study on Dynamic Effect and Stability Evolution Law of Rock Slope Excavation Unloading in Open Pit Mine[D].Qingdao:Qingdao University of Technology. |
null | Peng Kang,Li Xibing,Peng Shuquan,al et,2011.Optimization of frame stope structure parameters based on response surface method in under-sea mining[J].Journal of Central South University (Natural Science Edition),42(8):2417-2422. |
null | Qi C C,Fourie A,Chen Q S,2018.Neural network and particle swarm optimization for predicting the unconfined compressive strength of cemented paste backfill[J].Construction and Building Materials,159:473-478. |
null | Tang Lizhong,Deng Lifan,Jian Yinghua,2016.Study on optimization of stope structural parameters of sublevel open stope and subsequent filling mining method[J].Gold Science and Technology,24 (2):8-13. |
null | Tian Minghua,2009.Research on Key Technology of Mechanized Upward Horizontal Slicing and Filling Mining Method for Gently Inclined Medium Thick Ore Body[D].Changsha:Central South University. |
null | Wang Xiaoning,Cai Sijing,Qin Xinglang,2018.Optimization on the stope structure parameter for sublevel filling method in a gold mine of Xinjiang[J].Mining Research and Development,38(3):1-5. |
null | Xie C Y,Lu H,Chao L,al et,2018.Numerical optimization of broken and difficult for stope mining in underground metal mines[J].IOP Conference Series:Earth and Environmental Science,208(1):012104. DOI:10.1088/1755-1315/208/1/012104. |
null | Yang Yuping,Deng Xingxing,Feng Yan,2014.Optimization of mining method based on unascertainty measurement theory and AHP[J].Journal of Central South University(Natural Science Edition),45(11):3936-394 2. |
null | Zhang L H,Wang J H,Xue L,al et,2018.Optimization of stope structural parameters based on Mathews stability graph probability model[J].Advances in Civil Engineering,2018(2):1-7. DOI:10.1155/2018/1754328. |
null | Zhang Qinli,Jiang Chaoyu,Gao Xiang,al et,2020.Optimization of structural parameters of large section hexagonal drift mining method[J].Gold Science and Technology,28(1):42-50. |
null | Zhang Qinli,Zhao Yufei,Rong Shuai,al et,2019.Optimization of gently inclined thin vein mining method based on variable weight theory and TOPSIS[J].Gold Science and Technology,27(6):844-850. |
null | Zhao K,Gu S J,Yan Y J,al et,2018.Rock mechanics characteristics test and optimization of high-efficiency mining in Dajishan tungsten mine[J].Geofluids,(6):1-11. |
null | Zhao K,Wang Q,Li Q,al et,2019.Optimization calculation of stope structure parameters based on Mathews stabilization graph method[J].Journal of Vibroengineering,21(4):1227-1239. |
null | 陈晖,王腾,马振乾,等,2020.“三软”条件下金矿采场结构参数优化研究[J].中国矿业,29(4):141-145. |
null | 丁明飞,王卓,王大为,等,2014.缓倾斜极薄矿体采矿方法优化方案[J].黄金科学技术,22(1):56-59. |
null | 付玉华,占飞,李勇,2017.露地联采采场结构参数优化研究[J].中国矿业,26(1):83-87. |
null | 高明洁,李守正,王寅,等,2013.山东吉戈庄金矿复杂倾斜极薄矿脉开采方法的研究[J].黄金科学技术,21(1):49-52. |
null | 兰明,刘志祥,李夕兵,等,2018.中深孔崩矿阶段嗣后充填法采场结构参数优化[J].中南大学学报(自然科学版),49(4):933-939. |
null | 李启月,刘恺,李夕兵,2016.基于协同回采的深部厚大矿体分段充填采矿法[J].工程科学学报,38(11):1515-1521. |
null | 刘冬,邵安林,金长宇,等,2019.地下破碎矿体数值计算模型的构建及采场结构参数优化[J].中南大学学报(自然科学版),50(2):437-444. |
null | 刘轲,张明武,王鹏,2009.无底柱空场采矿法的研究与应用[J].矿业工程,7(1):20-22. |
null | 龙科明,王李管,2015.基于ANSYS-R法的采场结构参数优化[J].黄金科学技术,23(6):81-86. |
null | 马孝云,2014.露天矿岩质边坡开挖卸荷动力效应及其稳定性演化规律的研究[D].青岛:青岛理工大学. |
null | 彭康,李夕兵,彭述权,等,2011.基于响应面法的海下框架式采场结构优化选择[J].中南大学学报(自然科学版),42(8):2417-2422. |
null | 唐礼忠,邓丽凡,翦英骅,2016.分段空场嗣后充填采矿法采场结构参数优化研究[J].黄金科学技术,24(2):8-13. |
null | 田明华,2009.缓倾斜中厚矿体机械化上向水平分层充填采矿法关键技术研究[D].长沙:中南大学. |
null | 王小宁,蔡嗣经,覃星朗,2018.新疆某金矿分段充填法采场结构参数优化[J].矿业研究与开发,38(3):1-5. |
null | 阳雨平,邓星星,冯岩,2014.基于未确知测度与层次分析法的采矿方法优选[J].中南大学学报(自然科学版),45(11):3936-3942. |
null | 张钦礼,蒋超余,高翔,等,2020.大断面六角形进路采矿法结构参数优化研究[J].黄金科学技术,28(1):42-50. |
null | 张钦礼,赵宇飞,荣帅,等,2019.基于变权重理论和TOPSIS的缓倾斜薄矿脉采矿方法优选[J].黄金科学技术,27(6):844-850. |
/
〈 | 〉 |