Geophysics, geochemistry and engineering geology: how disciplines combine to improve mine slope design in the Pilbara detrital valleys of Western Australia

H. Baxter
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引用次数: 1

Abstract

Abstract Cenozoic age detrital sequences in the Pilbara region of Western Australia are becoming a focus for engineering geological and hydrogeological investigations with an increasing number of final open-pit walls developed in these materials for iron ore mining. Historically, detrital sequences were classified chronostratigraphically. However, within each chronostratigraphic unit exist sub-units of variable engineering geological and hydrogeological character. As the majority of drill-hole data from Pilbara iron ore mines is derived from reverse circulation techniques, a methodology to identify the engineering geological units through downhole geophysics and geochemical assays was required to progress model development to the level of detail required for geotechnical and hydrogeological studies. The methodology entails a review of cored hole data and use of twin holes to assess the typical geochemical and geophysical signatures of units identified. Improved interpretation of reverse circulation drill-holes has resulted in the development of detailed 3D engineering geological models, which have improved the understanding of geological variability and engineering properties for geotechnical and hydrogeological studies.
地球物理学、地球化学和工程地质学:如何结合学科来改善西澳大利亚皮尔巴拉碎屑山谷的矿山边坡设计
西澳大利亚皮尔巴拉地区新生代碎屑层序正成为工程地质和水文地质调查的重点,在这些材料中开发了越来越多的铁矿开采最终露天矿壁。历史上,碎屑层序按年代地层划分。然而,在每一个年代地层单元内存在着不同工程地质和水文地质特征的亚单元。由于Pilbara铁矿的大部分钻孔数据来自反循环技术,因此需要一种通过井下地球物理和地球化学分析来识别工程地质单元的方法,以便将模型开发进展到岩土工程和水文地质研究所需的详细程度。该方法需要对取心井数据进行审查,并使用双井来评估所确定单元的典型地球化学和地球物理特征。对反循环钻孔解释的改进导致了详细的三维工程地质模型的发展,这提高了对地质变异性和工程性质的理解,用于岩土和水文地质研究。
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