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Multivariate Block-Support Simulation of the Yandi Iron Ore Deposit, Western Australia

机译:西澳大利亚州Yandi铁矿床的多元区块支持模拟

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Mineral deposits frequently contain several elements of interest that are spatially correlated and require the use of joint geostatistical simulation techniques in order to generate models preserving their spatial relationships. Although joint-simulation methods have long been available, they are impractical when it comes to more than three variables and mid to large size deposits. This paper presents the application of block-support simulation of a multi-element mineral deposit using minimum/maximum autocorrelation factors to facilitate the computationally efficient joint simulation of large, multivariable deposits. The algorithm utilized, termed dbmafsim, transforms point-scale spatial attributes of a mineral deposit into uncorrelated service variables leading to the generation of simulated realizations of block-scale models of the attributes of interest of a deposit. The dbmafsim algorithm is utilized at the Yandi iron ore deposit in Western Australia to simulate five cross-correlated elements, namely Fe, SiO2, Al2O3, P and LOI, that are all critical in defining the quality of iron ore being produced. The block-scale simulations reproduce the direct- and cross-variograms of the elements even though only the direct variograms of the service variables have to be modeled. The application shows the efficiency, excellent performance and practical contribution of the dbmafsim algorithm in simulating large multi-element deposits.
机译:矿床经常包含一些与空间相关的重要元素,需要使用联合地统计模拟技术才能生成保留其空间关系的模型。尽管联合模拟方法早已可用,但在涉及三个以上变量和中大型沉积物时,它们是不切实际的。本文介绍了使用最小/最大自相关因子对多元素矿床进行块支持模拟的应用,以促进大型多变量矿床的高效计算联合模拟。使用的称为dbmafsim的算法将矿床的点尺度空间属性转换为不相关的服务变量,从而导致生成矿床感兴趣属性的块尺度模型的模拟实现。 dbmafsim算法用于西澳大利亚州的烟地铁矿矿床,模拟了五个至关重要的互相关元素,即Fe,SiO2 ,Al2 O3 ,P和LOI。确定生产的铁矿石的质量。即使仅需要对服务变量的直接变异图进行建模,块级模拟也会复制元素的直接变异图和交叉变异图。该应用程序展示了dbmafsim算法在模拟大型多元素沉积物中的效率,出色的性能和实际的贡献。

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