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Support and Information Effect Modeling for Recoverable Reserve Estimation of a Beach Sand Deposit in India

机译:印度海滩砂矿可采储量估算的支持和信息效果建模

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Application of geostatistics in estimating recoverable reserves of beach sand deposit is rare. This paper made an attempt to estimate local recoverable reserves using disjunctive kriging and discrete Gaussian model considering support and information effects for a beach sand deposit located in the eastern part of India. The dependence of different selective mining unit (SMU) sizes and different production sampling strategies on the estimated tonnage, metal quantity, and the ore tonnage versus metal quantity relationships has been examined. The results of the study show that nonlinear geostatistics should be used for more precise assessment of the grade, ore tonnage, and metal quantity and their relationships, which are necessary for recoverable reserve estimation. In selective mining operation, both support and information effects have significant influence on recoverable reserve. Recoverable reserve estimation based on SMU involves estimating grade distributions of mining unit with much bigger support than the available drill core sample data. Information effect comes into picture from the real scenario where the actual grades of the blocks remain unknown even during mining. At the mining stage, discrimination of ore and waste blocks is carried out based on estimated grades of the production samples and it is likely that the blocks might be misclassified as either ore or waste and thus sent to wrong destination. Information effect modeling makes the estimation more reliable by taking care of misclassification.
机译:地统计学在估计沙滩砂矿可采储量中的应用很少。本文尝试使用分离克里金法和离散高斯模型来估计当地可采储量,其中考虑了位于印度东部的海滩砂矿的支持和信息效应。已经检查了不同的选择性采矿单位(SMU)大小和不同的生产采样策略对估计的吨位,金属量以及矿石吨位与金属量之间的关系的依赖性。研究结果表明,应使用非线性地统计学来更精确地评​​估品位,矿石吨位,金属量及其关系,这对于可采储量估算是必要的。在选择性采矿作业中,支持和信息效应都对可采储量产生重大影响。基于SMU的可采储量估算涉及估算采矿单元的品位分布,其支持程度远大于可用的岩心样本数据。信息效果来自真实场景,在实际场景中,即使在采矿期间,块的实际等级仍然未知。在采矿阶段,将根据生产样本的估计等级对矿石和废物块进行区分,并且很可能将这些块错误地分类为矿石或废物,从而被发送到错误的目的地。信息效果建模通过注意分类错误使估计更加可靠。

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