Deformation as a process to transform shape and volume of protective structures of the development mine workings during coal-rock mass off-loading

IF 2.8 Q2 MINING & MINERAL PROCESSING
D. Chepiga, Iryna Bessarab, Vitalii Hnatiuk, O. Tkachuk, Oleksandr Kipko, S. Podkopaiev
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Abstract

Purpose is to assess deformation characteristics of protective structures while coal-rock mass off-loading to ensure wall rock stability as well as operating conditions of the development mine workings in coal mines. Methods. In a laboratory environment, uniaxial compression of protective structures has been applied on the models to identify the influence by deformation processes on the changes in their rigidness resulting from the shape and volume transformation. Findings. Under the deformation of rigid structures in the context of a safe strain resource, potential energy of their changes in shape is 4.1-6.5 times higher than the one of changes in volume. Beyond the safe deformation resource when critical level of the specific potential strain energy has been exceeded, strength of protective structures is not sufficient to restrict wall rock movement limiting their use. If relative volume variation in the rigid protective structures is δV > 0.06-0.082 then they lose their stability. Under such conditions, structural rigidity decreases by 14-22%. If pliable wooden protective structures are used then relative 0.62 ≤ δV ≤ 0.72 volume change doubles their rigidity. In the circumstances, the potential shape change energy is 2.1 times higher than the volume change energy; the abovementioned favours temporary compaction of wooden components of the compressive structure while improving its resistivity. Originality. Regularities of changes in the specific potential deformation energy of protective structures depending upon their shape and volume variation in terms of uniaxial compression have been identified. Practical implications. To ensure stability of wall rocks and maintain operating conditions of the development mine wor-kings, it is reasonable to apply pliable wooden protective structures which will help restrict roof and floor movements after their compaction. Insufficient residual strength of rigid protective structures, resulting if they lose their stability, provokes rock failure within the working areas of coal mines.
变形是煤岩体卸载过程中开发矿井工作面保护结构形状和体积变化的过程
目的是评估煤岩体卸载时保护结构的变形特征,以确保煤矿井壁岩石的稳定性以及开发矿井工作面的运行条件。方法。在实验室环境中,对保护结构模型进行单轴压缩,以确定变形过程对其形状和体积变化导致的刚度变化的影响。研究结果在安全应变资源范围内,刚性结构发生变形时,其形状变化的势能是体积变化势能的 4.1-6.5 倍。当超过安全变形资源的比应变势能临界值时,防护结构的强度不足以限制岩壁的移动,从而限制了其使用。如果刚性防护结构的相对体积变化 δV > 0.06-0.082 ,则会失去稳定性。在这种情况下,结构刚度会降低 14-22%。如果使用的是柔性木质保护结构,那么相对 0.62 ≤ δV ≤ 0.72 的体积变化会使其刚度增加一倍。在这种情况下,形状变化势能是体积变化势能的 2.1 倍;上述情况有利于临时压实抗压结构的木质部件,同时提高其电阻率。原创性。根据保护结构在单轴压缩时的形状和体积变化,确定了保护结构特定潜在变形能的变化规律。实际意义。为确保壁岩的稳定性和维持开发矿井的工作条件,采用柔性木质保护结构是合理的,这将有助于在压实后限制顶板和底板的移动。刚性保护结构的剩余强度不足,如果失去稳定性,就会导致煤矿工作区内的岩石崩塌。
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来源期刊
Mining of Mineral Deposits
Mining of Mineral Deposits MINING & MINERAL PROCESSING-
CiteScore
5.20
自引率
15.80%
发文量
52
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