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Optimization of Stope Structure Parameters Based on the Mined Orebody at the Meishan Iron Mine

机译:基于Meishan Iron Mine的矿井结构参数优化

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Based on the engineering background of the Meishan iron mine with sublevel caving (SLC) method, in this work, we adopted the method for identifying the shape of mined orebody (the original location in blasted slice), which analyzed and determined reasonable stope structure parameters. In the field test, the markers were arranged in the blasted slice, the mined orebody was measured by in situ tests, and reliable data were achieved. The shape of the mined orebody was obtained through this test when the width of drift was 6?m. The mined orebody’s shape was compared with the shape of the isolated extraction zone (IEZ), and the difference increased with increasing height. When the stope structural parameters were determined by the mined orebody, the larger the sublevel height was, the smaller the error was, which was compared with the method using ellipsoid arrangement theory to determine the stope structural parameters. Finally, the reasonable stope structure parameters were optimized. The sublevel height was 22?m, and the drift spacing was 20?m.
机译:基于梅山铁矿的工程背景,通过浮雕崩落(SLC)方法,在这项工作中,我们采用了识别开采矿体形状的方法(爆破切片中的原始位置),其分析和确定合理的迹象结构参数。在现场试验中,将标记物布置在喷砂切片中,通过原位试验测量开采的矿体,实现可靠的数据。当漂移宽度为6μm时,通过该测试获得挖掘矿体的形状。将矿物矿体的形状与分离的提取区(IEZ)的形状进行比较,并且随着高度的增加而增加。当采用矿物矿体确定术污染结构参数时,误差高度越大,误差越小,使用椭球布置理论的方法进行比较,以确定迹象结构参数。最后,优化了合理的迹象结构参数。 Sublevel Height为22Ωm,漂移间距为20μm。

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