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Inferring total organic carbon and major element geochemical and mineralogical characteristics of shale core from hyperspectral imagery

机译:从高光谱图像推断出页岩芯的总有机碳和主要元素地球化学和矿物学特征

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摘要

mineralogical information at the millimeter scale and thus have the potential to enable investigators to characterize shale composition and heterogeneity, complementing the direct chemical and x-ray diffraction analysis of core samples and guiding detailed sampling. This method provides insight into petrophysical and geomechanical properties because these properties are significantly correlated to rock composition. We tested this approach on a continuous long core from the shale sequence of the Horn River Group in the Horn River Basin, British Columbia, sampled at a spacing of 1 m (40 in.) and analyzed for geochemical composition. These data enable the calibration of spectral imagery to rock composition and specifically predict total organic carbon (TOC) and the abundance of SiO2, Al2O3, K2O, and CaO. We then imaged nine samples from the Woodford Shale from the Permian Basin, Texas, for a blind test to assess the predictive models. The models were then used to predict TOC and geochemical data over detailed imagery of 300 m (984 ft) of Horn River Group shale core and portray their spatial variability downhole as images and profiles. In its simplest form, hyperspectral imagery can be enhanced to highlight fabric in shale core that otherwise is difficult to visualize because of low brightness. In addition, we show that spectral imagery of shale can also be processed to either convey mineralogical (quartz, clay, and carbonate) or geochemical information. The resulting views can readily be used to guide the selection of samples and may provide tools for scaling reservoir properties from individual plugs to reservoir volumes.
机译:毫米刻度下的矿物学信息,因此有可能使研究人员能够表征页岩组成和异质性,并补充核心样品的直接化学和X射线衍射分析并引导详细的取样。该方法提供了进入岩石物理和地质力学性质的洞察力,因为这些性质与岩石组成显着相关。我们在不列颠哥伦比亚省霍恩河流域的喇叭河集团的页岩序列的持续长期测试这种方法,以1米(40英寸)的间距采样并分析地球化学组合物。这些数据使得光谱图像的校准能够校准到岩石组合物,并且具体地预测总有机碳(TOC)和SiO 2,Al 2 O 3,K 2 O和CaO的丰度。然后,我们从德克萨斯州德克萨斯州德克萨斯州德克萨斯州的伍德福德页岩上了九个样本,用于评估预测模型。然后,该模型用于预测霍尔河集团页岩核心300米(984英尺)的详细图像上的TOC和地球化学数据,并将其空间变异朝下描绘为图像和型材。在其最简单的形式中,可以增强高光谱图像,以突出页岩核心的织物,否则由于低亮度难以可视化。此外,我们还表明页岩的光谱图像也可以处理以传送矿物学(石英,粘土和碳酸盐)或地球化学信息。所得到的视图可以容易地用于引导样本的选择,并且可以提供用于将来自各个插头的储层性能缩放到储存量的工具。

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  • 来源
    《AAPG Bulletin》 |2018年第10期|共21页
  • 作者单位

    Univ Alberta Dept Earth &

    Atmospher Sci 1-26 Earth Sci Bldg Edmonton AB T6G 2E3 Canada;

    Univ Alberta Dept Earth &

    Atmospher Sci 1-26 Earth Sci Bldg Edmonton AB T6G 2E3 Canada;

    Univ Alberta Dept Earth &

    Atmospher Sci 1-26 Earth Sci Bldg Edmonton AB T6G 2E3 Canada;

    Univ Alberta Dept Earth &

    Atmospher Sci 1-26 Earth Sci Bldg Edmonton AB T6G 2E3 Canada;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 石油、天然气地质与勘探;矿床学;
  • 关键词

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