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Digital Drill Core Models: Structure-from-Motion as a Tool for the Characterisation, Orientation, and Digital Archiving of Drill Core Samples

机译:数字钻孔核心模型:结构 - 从动作作为钻孔样本的表征,方向和数字归档的工具

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摘要

Structure-from-motion (SfM) photogrammetry enables the cost-effective digital characterisation of seismic- to sub-decimetre-scale geoscientific samples. The technique is commonly used for the characterisation of outcrops, fracture mapping, and increasingly so for the quantification of deformation during geotechnical stress tests. We here apply SfM photogrammetry using off-the-shelf components and software, to generate 25 digital drill core models of drill cores. The selected samples originate from the Longyearbyen CO2 Lab project’s borehole DH4, covering the lowermost cap rock and uppermost reservoir sequences proposed for CO2 sequestration onshore Svalbard. We have come up with a procedure that enables the determination of bulk volumes and densities with precisions and accuracies similar to those of such conventional methods as the immersion in fluid method. We use 3D printed replicas to qualitatively assure the volumes, and show that, with a mean deviation (based on eight samples) of 0.059% compared to proven geotechnical methods, the photogrammetric output is found to be equivalent. We furthermore splice together broken and fragmented core pieces to reconstruct larger core intervals. We unwrap these to generate and characterise 2D orthographic projections of the core edge using analytical workflows developed for the structure-sedimentological characterisation of virtual outcrop models. Drill core orthoprojections can be treated as directly correlatable to optical borehole-wall imagery data, enabling a direct and cost-effective elucidation of in situ drill core orientation and depth, as long as any form of borehole imagery is available. Digital drill core models are thus complementary to existing physical and photographic sample archives, and we foresee that the presented workflow can be adopted for the digitisation and digital storage of other types of geological samples, including degradable and dangerous ice and sediment cores and samples.
机译:结构 - 从运动(SFM)摄影测量可以实现地震到分级尺度的地形样品的成本效益的数字表征。该技术通常用于露头,断裂映射,越来越多地用于在岩土应力测试期间进行变形的量化。我们在这里使用现成的组件和软件应用SFM摄影测量,以产生25个数字钻孔核心型号的钻孔核心。所选样品源自Longyearbyen Co2实验室项目的钻孔DH4,覆盖了在夏隆的CO2封存的最低帽岩石和最上层储存序列。我们提出了一种方法,该程序能够确定散装体积和密度,其具有与这种常规方法类似的精度和精度,作为这种常规方法的浸入流体方法中。我们使用3D打印的副本来定制卷,并表明与经过验证的岩土工程方法相比,使用0.059%的平均偏差(基于八个样本),发现摄影测量输出等同。我们此外,拼接在一起破碎和碎片化的核心部分以重建更大的核心间隔。我们使用为虚拟露头模型的结构沉积物理特征开发的分析工作流程来消除这些以产生和表征核心边缘的2D正交投影。钻芯正交分析可以被视为直接与光学钻孔壁图像数据直接相关,从而可以直接和成本效益地阐明原位钻核取向和深度,只要任何形式的钻孔图像都可以。因此,数字钻机核心模型因此与现有的物理和摄影样本档案互补,我们预见到所呈现的工作流程可以用于其他类型的地质样品的数字化和数字存储,包括可降解和危险的冰和沉积物核和样品。

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