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首页> 外文期刊>International journal of quality, statistics, & reliability >Planning for Reliable Coal Quality Delivery Considering Geological Variability: A Case Study in Polish Lignite Mining
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Planning for Reliable Coal Quality Delivery Considering Geological Variability: A Case Study in Polish Lignite Mining

机译:考虑地质变异性的可靠煤质运输计划:以波兰褐煤开采为例

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摘要

The aim of coal quality control in coal mines is to supply power plants daily with extracted raw material within certain coal quality constraints. On the example of a selected part of a lignite deposit, the problem of quality control for the run-of-mine lignite stream is discussed. The main goal is to understand potential fluctuations and deviations from production targets dependent on design options before an investment is done. A single quality parameter of the deposit is selected for this analysis-the calorific value of raw lignite. The approach requires an integrated analysis of deposit inherent variability, the extraction sequence, and the blending option during material transportation. Based on drill-hole data models capturing of spatial variability of the attribute of consideration are generated. An analysis based on two modelling approaches, Kriging and sequential Gaussian simulation, reveals advantages and disadvantages lead to conclusions about their suitability for the control of raw material quality. In a second step, based on a production schedule, the variability of the calorific value in the lignite stream has been analysed. In a third step the effect of different design options, multiple excavators and a blending bed, was investigated.
机译:煤矿中煤炭质量控制的目的是在某些煤炭质量限制内每天向电厂提供提取的原料。以褐煤矿床的选定部分为例,讨论了褐煤流的质量控制问题。主要目标是在完成投资之前了解取决于设计选项的潜在生产波动和偏离生产目标的情况。为该分析选择矿床的单一质量参数-褐煤的热值。该方法需要对沉积物固有变异性,提取顺序和物料运输过程中的混合选项进行综合分析。基于钻孔数据模型,生成了考虑属性的空间变异性的捕获。基于两种建模方法(克里金法和顺序高斯模拟)的分析显示了优​​缺点,得出了它们对控制原材料质量的适用性的结论。在第二步骤中,基于生产计划,已经分析了褐煤流中热值的变化性。第三步,研究了不同设计方案,多个挖掘机和一个混合床的效果。

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  • 来源
    《International journal of quality, statistics, & reliability》 |2015年第2015期|941879.1-941879.9|共9页
  • 作者单位

    Department of Surface Mining, AGH University of Science and Technology, Mickiewicza Avenue 30, 30-059 Krakow, Poland;

    Department of Mineral Resources Acquisition, MEERI PAS, Wybickiego Street 7, 31-261 Krakow, Poland;

    Faculty of Civil Engineering and Geoscience, Delft University of Technology, Building 23, Stevinweg 1, P.O. Box 5048, 2600 GA Delft, Netherlands;

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