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Reaping the First Fruits - Infrared Spectroscopy: the New Standard Tool In BHP Billiton Iron Ore Exploration

机译:收获第一个水果 - 红外光谱:BHP Billiton铁矿石勘探中的新标准工具

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With the current focus in the mining industry on reducing costs, while simultaneously improving ore quality, infrared spectroscopy is a tool that can potentially assist companies to meet both challenges. Changes in the nature of infrared spectra are strongly influenced by changes in mineralogy, which is a key input variable for exploration (geology and orebody modelling and ore characterisation) and mining (pit design, mine scheduling and processing plant design/ management). Infrared spectroscopic logging of drill holes has been embedded as a standard tool in BHP Billiton Iron Ore exploration, with a process set up to automatically deliver mineralogy and associated imagery to the end users (typically exploration geologists). The availability of consistent and automated mineralogy drill hole logs across a project is improving the output quality and reducing re-work. BHP Billiton Iron Ore is now looking into using the same infrared spectroscopic data for other applications, including improving predictions of geometallurgical and geotechnical parameters. Trials show that addition of infrared spectroscopic data to conventional data sets (element analysis and depth information) is significantly improving the accuracy of regression models to predict the lump-fine ratio. Further initiatives around infrared spectroscopic data in BHP Billiton Iron Ore include the installation of infrared spectroscopic sensors over conveyor belts, infrared spectroscopic mine face scanning and infrared spectroscopic blasthole logging. The ultimate vision is to have consistent, seamless mineralogical data from infrared spectroscopic sensing available throughout the mineral value chain (exploration/mining/processing). This seamless infrared spectroscopic data 'bridge' will allow the transfer of knowledge between the different sections of the value chain (exploration, mining and processing). For example, ore handle-ability could be predicted on exploration samples using regression models built from processing plant observations. In the opposite direction, information gathered about the buried stratigraphy by infrared spectroscopy utilised during exploration, could be used to predict the stratigraphy encountered during mining. This collaboration across BHP Billiton Iron Ore is expected to deliver significant savings, while improving the quality of the final product, thus helping to drive efficiency over the next decade.
机译:随着目前在矿业行业的重点降低成本,同时提高矿石质量,红外光谱是一种可以帮助公司遇到两个挑战的工具。红外光谱性质的变化受矿物学变化的强烈影响,这是勘探(地质和矿石建模和矿石表征)和采矿(坑设计,矿井调度和加工厂设计/管理)的关键输入变量。钻孔的红外光谱测井已作为BHP Billiton铁矿石勘探的标准工具嵌入,并设立了一个过程,以自动向最终用户提供矿物学和相关图像(通常勘探地质学家)。跨项目的一致和自动化矿物钻孔日志的可用性正在提高输出质量和减少重新工作。 BHP Billiton Iron Ore现在正在研究使用与其他应用的相同的红外光谱数据,包括改善几何冶金和岩土工程参数的预测。试验表明,向传统数据集(元素分析和深度信息)向传统数据集添加到传统数据集(元素分析和深度信息)显着提高回归模型的准确性来预测块状细比。 BHP Billiton铁矿石中红外光谱数据的进一步举措包括在传送带上安装红外光谱传感器,红外光谱矿面扫描和红外光谱膨胀孔测井。最终的视觉是在整个矿物价值链中可用的红外光谱传感中具有一致的无缝矿物学数据(勘探/采矿/加工)。这种无缝红外光谱数据“桥梁”将允许在价值链的不同部分之间传输(勘探,采矿和处理)。例如,可以使用从处理植物观测的回归模型来预测ORE手柄能力。在相反的方向上,通过勘探中使用的红外光谱收集的信息收集的信息,可用于预测矿业期间遇到的地层。 BHP Billiton Iron Ore的这种合作预计将节省大量储蓄,同时提高最终产品的质量,从而有助于在未来十年内推动效率。

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