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Evaluation of Precision being Obtained by a Three-Stage Sampling System for Coal

机译:通过三阶段采样系统对煤进行精度评估

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The primary objective of this paper is to demonstrate a different approach to predicting and verifying mechanical sampling system precision. Early in the year 2011 an experiment was conducted to evaluate the sampling precision being obtained by a three-stage falling-stream mechanical sampling system for coal owned and operated by Peabody Energy. This system collects samples from lots averaging approximately 140001 being loaded onto rail cars at a flow rate averaging about 9000 t/h. In phase 1 of the experiment, a total of 60 increments were collected in a two day period at preassigned intervals using a cross-belt sampler located on a conveyor belt feeding a silo upstream of the sampling system under evaluation. Coal variability parameters were calculated from the resulting laboratory analysis data using the gauge-invariant fractal model developed by the author. Estimates of precision of the three-stage system as a function of the number of increments were calculated using the variability parameters determined in phase 1. In phase 2 of the experiment, duplicate samples of 30 lots of coal were taken by the three-stage sampling system, enabling calculations of the precision being achieved by the system. Phase 2 precision estimates are in reasonable agreement with those of phase 1. Conclusions drawn from the experiment include the following: 1. Experimental variograms or the equivalent correlograms are essential in understanding sampling issues and for designing a sampling system to meet specific precision requirements. 2. Consensus coal sampling standards provided by ISO and ASTM may be improved by treating all stages of a mechanical sampling system as 'sampling' rather than considering downstream sampling stages as 'sample preparation', to be treated in a separate part of the document. 3. The coal industry would profit from use of methodology for routinely monitoring the overall measurement precision and the precision of the individual components of measurement: sampling, sample preparation and laboratory testing. This would not only give necessary credence to the measurement results but would also no doubt, lead to more efficient sampling system designs.
机译:本文的主要目的是演示一种预测和验证机械采样系统精度的不同方法。 2011年初,进行了一项实验,以评估由皮博迪能源公司拥有和运营的三级下降流机械采样系统获得的采样精度。该系统从平均约140001的批次中收集样本,这些样本以平均约9000吨/小时的流量加载到有轨车上。在实验的第1阶段中,使用位于评估中的采样系统上游的料仓的传送带上的交叉带式采样器,以预定的间隔在两天的时间内总共收集了60个增量。使用作者开发的量规不变分形模型,从所得的实验室分析数据中计算出煤的可变性参数。使用阶段1中确定的可变性参数来计算三阶段系统的精度随增量数量的变化。在实验的阶段2中,通过三阶段采样获取了30批煤的重复样本系统,可以计算系统所达到的精度。第2阶段的精确度估算与第1阶段的精确度合理吻合。从实验得出的结论包括:1.实验变量图或等效相关图对于理解采样问题和设计满足特定精度要求的采样系统至关重要。 2.可以通过将机械采样系统的所有阶段都视为“采样”,而不是将下游采样阶段视为“样品制备”来改进ISO和ASTM提供的共识性煤炭采样标准,在文档的单独部分中进行处理。 3.煤炭行业将受益于使用常规监测总体测量精度和测量的各个组成部分的精度的方法:采样,样品制备和实验室测试。这不仅会给测量结果提供必要的证明,而且无疑会导致更有效的采样系统设计。

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    《Sampling conference》|2012年|115-124|共10页
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    C D Rose;

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