Simulation of Asymmetric Destabilization of Mine-void Rock Masses Using a Large 3D Physical Model

被引:0
|
作者
X. P. Lai
P. F. Shan
J. T. Cao
F. Cui
H. Sun
机构
[1] Xi’an University of Science and Technology,School of Energy and Mining Engineering
[2] Ministry of Education of China,Key Laboratory of Western Mines and Hazard Prevention
来源
关键词
Asymmetric destabilization; Extremely steep and thick coal seam (ESTCS); Mechanized sub-horizontal section top coal caving (SSTCC); 3D physical modeling; Multi-mean timely track monitoring;
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学科分类号
摘要
When mechanized sub-horizontal section top coal caving (SSTCC) is used as an underground mining method for exploiting extremely steep and thick coal seams (ESTCS), a large-scale surrounding rock caving may be violently created and have the potential to induce asymmetric destabilization from mine voids. In this study, a methodology for assessing the destabilization was developed to simulate the Weihuliang coal mine in the Urumchi coal field, China. Coal-rock mass and geological structure characterization were integrated with rock mechanics testing for assessment of the methodology and factors influencing asymmetric destabilization. The porous rock-like composite material ensured accuracy for building a 3D geological physical model of mechanized SSTCC by combining multi-mean timely track monitoring including acoustic emission, crack optical acquirement, roof separation observation, and close-field photogrammetry. An asymmetric 3D modeling analysis for destabilization characteristics was completed. Data from the simulated hydraulic support and buried pressure sensor provided effective information that was linked with stress–strain relationship of the working face in ESTCS. The results of the 3D physical model experiments combined with hybrid statistical methods were effective for predicting dynamic hazards in ESTCS.
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页码:487 / 502
页数:15
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