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Isolating the impact of rock properties and operational settings on minerals processing performance: A data-driven approach

机译:隔离岩石属性的影响和操作系统对矿物处理性能的影响:数据驱动方法

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摘要

Mining operations record a large amount of data from multiple sources (such as block model and online processing data) which is neither effectively nor systematically used to understand and improve operational performance. This paper proposes a generic semi-automatable data analytics method, the Integrated Analysis Method (IAM), that addresses the disconnection between disparate datasets. IAM enables evidence-based understanding of rock and machine parameters, laying the foundation for a potentially more sophisticated way to model and predict mining processes to deliver financial value. IAM systematically combines and analyses both rock characteristics and operational data to isolate the impact of the variability in rock characteristics and operational settings on key performances. Insights extracted from IAM allow one to narrow down key operating conditions, specific to a particular plant, that are correlated to, for example, significant differences in daily throughput while processing batches of ore with similar metallurgical characteristics. Such insights can be used for multiple purposes, for instance, to learn optimal processing recipes for a given set of rock properties. We applied JAM to a combined data set recorded at a Chilean ore deposit and evaluated our findings with domain experts.
机译:挖掘操作记录来自多个源的大量数据(例如块模型和在线处理数据),既不有效地也没有系统地使用,以了解和提高操作性能。本文提出了通用半自动数据分析方法,集成分析方法(IAM),用于解决不同数据集之间的断开连接。 IAM能够掌握基于岩石和机器参数的证据,为模拟和预测采矿过程提供了潜在更复杂的方式,为提供财务价值的潜在更复杂的方式。 IAM系统地结合并分析了岩石特征和操作数据,以隔离岩石特性变异性和在关键性能上的操作环境的影响。从IAM提取的洞察力允许一个到缩小到特定工厂的关键操作条件,其与例如日常吞吐量的显着差异相关,同时处理具有相似冶金特性的矿石的矿石。例如,这种见解可以用于多种目的,以学习给定的一组岩石属性的最佳处理配方。我们将Jam应用于智利矿床记录的组合数据集,并用域专家评估我们的调查结果。

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