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Failure Characteristics and Confined Permeability of an Inclined Coal Seam Floor in Fluid-Solid Coupling

机译:固液耦合的倾斜煤层底板的破坏特征和局限渗透率

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摘要

Secondary development of FLAC(3D) software was carried out based on FISH language, and a 3D fluid-solid coupling numerical calculation model was established for an inclined seam mining above a confined aquifer in Taoyuan Coal Mine. A simulation study was implemented on the mining failure depth of an inclined coal seam floor, conducting height of confined water, and the position of workface floor with easy water inrush during advancement of workface. Results indicated that, during the advancement of the inclined coal seam's workface, obvious equivalent stress concentration areas existed in the floor strata, and the largest equivalent stress concentration area was located at the low region of workface floor. When the inclined coal seam workface advanced to about 80 m, the depth of floor plastic failure zone reached the maximum at approximately 15.0 m, and the maximum failure depth was located at the low region of the workface floor. Before the inclined workface mining, original confined water conducting existed on the top interface of the confined aquifer. The conducting height of the confined water reached the maximum at about 11.0 m when the workface was pushed forward from an open-off cut at about 80 m. Owing to the barrier effect of the "soft-hard-soft" compound water-resistant strata of the workface floor, pore water pressure and its seepage velocity in the floor strata were unchanged after the workface advanced to about 80 m. After the strata parameters at the workface floor were changed, pore water pressure of the confined water could pass through the lower region of the inclined workface floor strata and break through the barrier of the "soft-hard-soft" compound water-resistant strata of the workface floor and into the mining workface, resulting in the inclined coal seam floor water inrush. Results of this study can provide a basis for predicting, preventing, and governing the inclined coal seam floor water inrush above confined aquifer.
机译:基于FISH语言进行了FLAC(3D)软件的二次开发,建立了桃园煤矿某承压含水层上方倾斜煤层开采的3D流固耦合数值计算模型。对倾斜煤层底板的开采破坏深度,承压水的高度以及工作面推进过程中容易涌水的工作面底板的位置进行了仿真研究。结果表明,在倾斜煤层工作面推进过程中,地层中存在明显的等效应力集中区域,最大等效应力集中区域位于工作面底板的下部。当倾斜煤层工作面前进至约80 m时,底板塑性破坏区的深度达到最大,约为15.0 m,最大破坏深度位于工作面底板的下部。在倾斜工作面开采之前,原始承压水存在于承压含水层的顶部界面。当工作面从约80 m的开口处向前推动时,承压水的传导高度达到约11.0 m的最大值。由于工作面底板的“软-硬-软”复合耐水层的阻隔作用,在工作面前进到约80 m后,地层中的孔隙水压力及其渗流速度没有变化。改变工作面底板的地层参数后,承压水的孔隙水压力可以通过倾斜工作面底板的下部区域,并冲破“软-硬-软”复合防水层的屏障工作面底板的地层并进入采矿工作面,导致倾斜的煤层底板涌水。这项研究的结果可以为预测,预防和控制承压含水层上方的倾斜煤层底板突水提供基础。

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  • 来源
    《Advances in civil engineering》 |2018年第6期|2356390.1-2356390.12|共12页
  • 作者单位

    Anhui Univ Sci & Technol, Sch Energy & Safety, Huainan 232001, Peoples R China;

    China Univ Min & Technol, State Key Lab Coal Resources & Safe Min, Xuzhou 221116, Jiangsu, Peoples R China;

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