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Predictive Models of Mineralogy from Whole-Rock Assay Data: Case Study from the Productora Cu-Au-Mo Deposit, Chile

机译:全岩体测定数据的矿物质的预测模型:智利产品杂志矿床案例研究

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摘要

Mineralogy is a fundamental characteristic of a given rock mass throughout the mining value chain. Understanding bulk mineralogy is critical when making predictions on processing performance. However, current methods for estimating complex bulk mineralogy are typically slow and expensive. Whole-rock geochemical data can be utilized to estimate bulk mineralogy using a combination of ternary diagrams and bivariate plots to classify alteration assemblages (alteration mapping), a qualitative approach, or through calculated mineralogy, a predictive quantitative approach. Both these techniques were tested using a data set of multielement geochemistry and mineralogy measured by semiquantitative X-ray diffraction data from the Productora Cu-Au-Mo deposit, Chile.
机译:矿物学是整个采矿价值链的给定岩石质量的基本特征。 在进行对处理性能的预测时,了解批量矿物学至关重要。 然而,估计复合体矿物学的目前的方法通常是缓慢和昂贵的。 全岩地球化学数据可用于使用三元图和二核曲线的组合来估计块状矿物学,以对改变组合(改变映射),定性方法或通过计算的矿物学,一种预测的定量方法来分类。 通过来自来自智利的促销素Cu-Au-Mo沉积物的半定位X射线衍射数据测量的多元素地球化学和矿物学进行测试。

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