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Stability Mechanism and Repair Method of U-Shaped Steel Reverse Arch Support in Soft Floor Roadway

机译:柔软地板巷道U形钢逆拱支撑稳定机理及修复方法

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This paper is aimed at the inverted arch support instability of track roadway with mining level +1100?m in Liuyuanzi Coal Mine. By means of field investigation, theoretical analysis, numerical calculation, and engineering practice, the instability reasons of inverted arch structure are expounded, the mechanical mechanism of instability of inverted arch structure is revealed, and the “sliding-rotating beam” for the instability of inverted arch structure is put forward. Based on Fenner’s formula and mechanics principle, the equilibrium equation of “sliding-rotating beam” is given. The results show the following: Firstly, the insufficient stiffness at the joint of the inverted arch structure and the U-shaped steel support on the floor is the key reason for the floor instability. Secondly, when the action stress of the “sliding-rotating beam” is less than the critical value, three kinds of instability modes of the inverted arch structure may occur, that is, sliding upward, rotating upward, or sliding-rotating upward. Each instability criterion and critical value are also different. Considering the axisymmetric condition, the critical value calculation formula of the three modes can be simplified into one formula. Thirdly, the equivalent friction factor restricts the stability of the “sliding-rotating beam,” and there is a “breaking point.” The relationship between the equivalent friction factor and the action stress of the “sliding-rotating beam” is “class hyperbola.” When the equivalent friction factor is greater than the “breaking point value,” the “sliding-rotating beam” may remain stable. Moreover, with the increase of equivalent friction factor, the action stress required for the stability of the “sliding-rotating beam” is smaller, and it tends to be more stable. The breaking point value of equivalent friction factor is 18.6. Finally, 36U-shaped steel round frame with bolt-mesh-shotcrete-combined support is applied to improve the equivalent friction factor and the foot stiffness of U-shaped support in roadway. After two months of on-site implementation, the floor heave was reduced by 69.1%. In conclusion, the theoretical analysis is correct and the control method is effective.
机译:本文旨在沿着柳川煤矿采矿等级+1100?M的倒立拱支撑不稳定。通过现场调查,理论分析,数值计算和工程实践,阐述了倒置拱形结构的不稳定原因,揭示了倒拱结构不稳定性的机械机制,以及用于不稳定性的“滑动旋转梁”提出了倒置拱结构。基于Fenner的公式和力学原理,给出了“滑动旋转梁”的平衡方程。结果表明以下:首先,倒拱结构的关节处的刚度不足以及地板上的U形钢支撑件是地板不稳定性的关键原因。其次,当“滑动旋转梁”的动作应力小于临界值时,可能发生倒拱形结构的三种不稳定性模式,即,向上滑动,向上旋转或向上滑动或滑动旋转。每个不稳定标准和临界值也不同。考虑到轴对称条件,三种模式的临界值计算公式可以简化为一个公式。第三,等效摩擦因子限制了“滑动旋转光束”的稳定性,并且存在“断裂点”。 “滑动旋转光束”的等效摩擦因子与“滑动梁”的动作应力之间的关系是“级双曲线”。当等效摩擦系数大于“断开点值”时,“滑动旋转光束”可以保持稳定。此外,随着等效摩擦系数的增加,“滑动旋转梁”稳定性所需的动作应力较小,并且趋于更稳定。等效摩擦系数的断裂点值是18.6。最后,采用了36U形钢圆形框架,采用螺栓网 - 喷射晶体合并的载体来改善巷道中U形支撑的等效摩擦因子和足刚度。经过两个月的现场实施后,楼层涨幅减少了69.1%。总之,理论分析是正确的,控制方法是有效的。

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