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首页> 外文期刊>Acta Geotechnica Slovenica >AN ANALYSIS OF THE GEOMECHANICAL PROCESSES IN COAL MINING USING THE VELENJE MINING METHOD
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AN ANALYSIS OF THE GEOMECHANICAL PROCESSES IN COAL MINING USING THE VELENJE MINING METHOD

机译:用Velene方法开采煤层的地质力学过程

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With in-depth geomechanical analyses of sub-level mining using the longwall mining method we can identify the relationships between the physical and mechanical parameters of geological materials, depending on the intensity of the coal extraction. The extent and the intensity of the mining operations impose impacts on the stresses and cause deformation changes in the rocks and in the coal seams on a broader area of excavations. The method of sub-level coal extraction requires multi-caving of the hanging-wall layers, which are recompressed, and in sub-level stoping each represents a hanging wall. The repeating processes of caving-in and compression, from the aspect of the theory of plasticity, have been relatively little researched because every such process brings about structural changes in natural, multi-caved and recompressed materials in the hanging wall. The intensity of the coal extraction has direct impacts on the surrounding and distant mining areas. Extensive stress and deformation changes in the surrounding area, and in the mine, represent a safety hazard for the employees, since the supporting system in the mine roadway could collapse. Therefore, a controlled excavation of the coal, and a good understanding of the geomechanical properties of all the materials and processes involved, is extremely important for planning and managing economic production, while also ensuring safe mining operations. A numerical model that allows for in-depth analyses of the geomechanical processes that occur in the hanging wall, the footwall and in the coal seam during sub-level coal excavation, is broadly applicable and highly relevant for analysing the intensity and the level of the caving processes in sub-level coal mining, and for making realistic plans for coal excavation with workers' safety in mind.
机译:通过使用长壁开采方法对地下开采进行深入的地质力学分析,我们可以根据煤的开采强度来识别地质材料的物理和机械参数之间的关系。采矿作业的范围和强度会对应力产生影响,并在更广泛的开挖区域中引起岩石和煤层变形的变化。地下采煤的方法需要对顶壁层进行多次崩落,然后再对其进行压缩,在顶壁停止层中,每个都代表顶壁。从可塑性理论的角度来看,塌陷和压缩的重复过程很少进行研究,因为每一个这样的过程都会导致吊壁中天然,多腔和再压缩材料的结构变化。煤炭开采的强度直接影响周围和远处的矿区。由于矿井巷道中的支撑系统可能会坍塌,因此周围区域以及矿井中应力和变形的广泛变化对员工构成了安全隐患。因此,对煤炭进行有控制的开挖,并对所有涉及的材料和过程的地质力学特性有一个很好的了解,对于规划和管理经济生产,同时确保安全的采矿作业极为重要。一个数值模型可以深入分析地下煤层开采过程中在悬壁,下盘壁和煤层中发生的地质力学过程,该模型广泛适用于分析煤层的强度和水平。在地下采煤中进行放煤过程,并在考虑到工人安全的前提下制定切实可行的采煤计划。

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