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Design of support system for bord and pillar workings

机译:线和支柱工作支持系统的设计

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摘要

The estimation of rock load from the strata and its distribution over the underground mine workings is of prime importance. In Indian coalmines, CMRI- RMR and NGI-Q Systems are mostly used for formulating design of support in rock engineering. Support systems are also designed with the help of numerical modeling. The working has been modeled by writing a program code in FLAC5.0. The modeling is done for driving of galleries (development) to form three pillars. The vertical stress contours indicated a maximum stress of about 2.5Mpa on pillars for the depth of 53m with a gallery width of 4.8 m and pillar size of 25 m.udRock load on the basis of RMR for the development gallery is 2.4 t/m2. Support system consisting of Resin bolt with bolt spacing of 1.5 m row spacing of 1.5 m has a support capacity of 5 t/m2. No of bolts in a row is 3 is for galleries of 4.5m width and area of 4.5m x 1.5m. This support system has a safety factor of 2, which is adequate. Rock load on the basis of RMR for the junction is 3.17t/m2. support system consisting of Resin bolt with bolt spacing of 1.5 m, row spacing of 1.5 m, has a support capacity of 7.4t/m2 No of bolts in a row is 3, No of row 3, is proposed to support junction of 4.5m x 4.5m area which gives a safety factor of 2.33. It shows the junction is well supported & there is no fear of roof fall, so support is adequate.udFor depillaring workings, Rock load on the basis of Q is 6.19 t/m2 for Slice, and 7.79 t/m2 for goaf edges. Support system consisting of one chock and 3 steel prop is designed. Goaf edge support is designed with skin to skin chock with a spacing of 1.2 with corner props. The support system for the slice consists of 2 props with spacing of 1.2m having a support capacity of 10 t/m2. The support system gives a factor of safety of 1.61 for slices and safety factor of 1.23 for goaf edge.udSupport system can be included in the numerical model for better understanding of the stability of the workings with supports of different types and capacities. These approaches can be followed for many mines and the performance of the support system can be monitored with load cells, and the models can be calibrated accordingly. This will improve the dependability and applicability of the numerical models as a solution for design of support system.
机译:从地层估算岩石载荷及其在地下矿井中的分布至关重要。在印度煤矿中,CMRI-RMR和NGI-Q系统主要用于制定岩石工程中的支护设计。支撑系统还借助数值建模进行设计。通过在FLAC5.0中编写程序代码来对工作进行建模。完成建模以驱动画廊(开发)以形成三个支柱。竖向应力等值线表明,在深度为53m,廊宽为4.8 m,支柱尺寸为25 m的情况下,支柱上的最大应力约为2.5Mpa。 。由树脂螺栓组成的支撑系统,其螺栓间距为1.5 m,行间距为1.5 m,支撑能力为5 t / m2。对于宽度为4.5m,面积为4.5m x 1.5m的画廊,连续没有3个螺栓。该支持系统的安全系数为2,足够了。基于RMR的路口岩石荷载为3.17t / m2。支撑系统由树脂螺栓组成,螺栓间距为1.5 m,行间距为1.5 m,支撑能力为7.4t / m2一行中的螺栓数量为3,第3行的螺栓数量为4.5mx 4.5m区域,安全系数为2.33。这表明路口得到了很好的支撑,并且不必担心屋顶会掉落,因此支撑是足够的。设计了由一个轴承座和三个钢支柱组成的支撑系统。采空区边缘支架的设计与皮肤之间的间隔距离为1.2,带有角撑杆。切片的支撑系统由2个间距为1.2m的支柱组成,支撑能力为10 t / m2。支撑系统对切片的安全系数为1.61,对采空区边缘的安全系数为1.23。 ud可以在数值模型中包含支撑系统,以更好地理解带有不同类型和容量的支撑的工作稳定性。许多矿山都可以采用这些方法,并且可以使用称重传感器监控支撑系统的性能,并可以相应地对模型进行校准。这将提高数值模型作为支撑系统设计解决方案的可靠性和适用性。

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    Biswal Manoj;

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  • 年度 2010
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