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Numerical Analysis of Stope Stability Based on Coupling of MIDAS/GTS and FLAC3D

机译:基于MIDAS / GTS和FLAC3D耦合的采场稳定性数值分析。

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Taking industrial field test at Kelatongke Copper Nickel Mine in Sinkiang,which uses the back-filling mining method based on environment reconstructed deep-hole introducing caving,as an engineering background,the threedimensional mesh model of ore body excavation was constructed by using the MIDAS/GTS software,and then the model data were transformed into FLAC3D to build the numerical simulation model,after which the simulation calculations were carried out. Finally,according to the simulation calculation results,the deformation responses and stress characteristics of artificial roof and surrounding rock were analyzed. It is proved that after the ore in the stope was mined out,the underneath of middle of the artificial roof had tensile zone,the maximum stress value was 0.21MPa,whose sinking displacement also reached the maximum value,up to 43.2mm. The left end of artificial roof was subject to shear stress,the phenomenon of stress concentration is obvious. The upper and lower surrounding rock of stope are under a state of tensile stress,maximum tensile stress value is 1.0MPa,and the displacement of the lower surrounding is greater than that of the upper surrounding rock,up to 47.3mm. Building a 9m thickness concrete structure as a safety manual roof can ensure safe production in stope under the roof.
机译:以新疆喀拉通克铜镍矿的工业现场试验为基础,利用环境重构深孔引入放空的回填开采方法,作为工程背景,利用MIDAS /用GTS软件,将模型数据转化为FLAC3D,建立数值仿真模型,然后进行仿真计算。最后,根据模拟计算结果,分析了人工顶板和围岩的变形响应和应力特性。实践证明,采场中的矿石开采后,在人工顶板中部的下部有拉伸带,最大应力值为0.21MPa,下沉位移也达到最大值,达43.2mm。人造屋顶的左端受到剪应力,应力集中现象明显。采场的上下围岩处于张应力状态,最大张应力值为1.0MPa,下部围岩的位移大于上部围岩的位移,达47.3mm。建造9m厚的混凝土结构作为安全的手动屋顶可以确保在屋顶下的采场安全生产。

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