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Stress analysis in longwall entry roof under high horizontal stress.

机译:高水平应力作用下长壁入口顶板的应力分析。

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摘要

High horizontal stress plays an important role in ground control in longwall mining. It can significantly affect the stability of the panel entry system in both the development and mining periods. Many roof problems have been contributed to high horizontal stress, especially when the immediate roof is weak, or thinly bedded.; In this research, the stress distributions in the entry roof in longwall mining have been studied when the high horizontal stress occurs. Using a three-dimensional finite element method, the stresses in the entry roof have been analyzed for the different cases. It is found that the stress angle is the most important factor that affects the roof stability when the magnitude of horizontal stress is fixed. Generally, the longwall entries are in the worst stress conditions when the stress angle is about 60° ∼ 75°.; At the T-junctions of a longwall panel, the entries are subjected to large front abutment pressure. Under horizontal stress, the roof stresses at the T-junctions increase with the stress angle. In a single panel, the stress in the headgate entries is larger than that in the tailgate entries when the maximum horizontal stress is from the headgate side. In a multiple-panel system, the stress in the headgate is larger when the horizontal stress is from the gob side than that from the solid coal side. But, the stress in the tailgate is always larger than that in the headgate.; Roof failures often occur in the laminated roof, where the roof consists of some rock layers. In this situation, the slip between the coal seam and the roof/floor may occur. In addition, the roof separations can appear. In this study, the roof separations and the slip have been simulated. Because of the slip between the coal sewn and the roof/floor, the stresses in the entry roof relieve to some degree. If the coefficient of friction in the interfaces is small, the stresses in the roof relieve significantly. The stresses in the roof increase with the coefficient of friction and the stress ratio of the horizontal to the vertical stress. When the roof separations occur, the stresses in the roof increase. Usually, the lowest roof layer is subjected to the largest loading. On the upper surface of this layer, tensile stress occurs along the vertical direction, which will worsen the roof condition.
机译:高水平应力在长壁开采的地面控制中起着重要作用。它会在开发和采矿期间严重影响面板进入系统的稳定性。许多屋顶问题是造成高水平应力的原因,特别是当直接屋顶较弱或床层薄时。在这项研究中,研究了当高水平应力发生时在长壁开采中入口顶板的应力分布。使用三维有限元方法,针对不同情况分析了入口顶板中的应力。研究发现,当水平应力大小固定时,应力角是影响屋顶稳定性的最重要因素。通常,当应力角约为60°〜75°时,长壁进入处处于最坏的应力状态。在长壁面板的T型连接处,入口承受较大的前基台压力。在水平应力作用下,T形结处的屋盖应力随应力角的增大而增大。在单个面板中,当最大水平应力来自车门侧时,车门入口中的应力大于车门入口中的应力。在多面板系统中,当水平应力来自于采空区时,闸门中的应力要大于固体煤侧时的闸门应力。但是,后挡板的应力始终大于后挡板的应力。屋顶故障通常发生在层压屋顶中,那里的屋顶由一些岩石层组成。在这种情况下,煤层和顶板/底板之间可能会发生打滑。此外,可能会出现屋顶分隔。在这项研究中,对顶板的间距和滑动进行了模拟。由于缝制的煤和顶板/底板之间的打滑,入口顶板中的应力会有所减轻。如果界面中的摩擦系数较小,则顶板中的应力会大大减轻。屋顶的应力随着摩擦系数和水平应力与垂直应力的应力比的增加而增加。当发生顶板分离时,顶板中的应力会增加。通常,最低的顶层承受最大的负荷。在该层的上表面,沿垂直方向会产生拉应力,这会使屋顶状况恶化。

著录项

  • 作者

    Chen, Hanjie.;

  • 作者单位

    West Virginia University.;

  • 授予单位 West Virginia University.;
  • 学科 Engineering Mining.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 278 p.
  • 总页数 278
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 矿业工程;
  • 关键词

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