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Rapid determination of supercritical CO_2 and brine relative permeability using an unsteady-state flow method

机译:利用非稳态流法快速测定超临界CO_2和盐水相对渗透率

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摘要

Relative permeability of supercritical CO2 (scCO(2)) and brine was determined in reactive and non-reactive rock cores using a combination of unsteady-state methodology and computed tomography. Experiments were con-ducted using a medical grade CT scanner to determine saturation using a custom Python script. The saturation and differential pressure across the core were then used to derive four empirical constants to calculate relative permeability. This methodology increases temporal efficiency while reducing experimental complexity. Addition-ally, we show that the method can be used to determine scCO(2) relative permeability in a wide range of lithologies and flow rates, and with the ability to account for matrix dissolution during scCO(2) flooding.Plain Language Summary: : The ability to capture and store carbon dioxide (CO2) is an important component of efforts to slow climate change. Long-term geologic storage of CO2 requires accurate descriptions of injected CO2 in subsurface rock formations to account for stored volumes and develop adequate risk monitoring. Effectively describing the migration of CO2 injected in underground reservoirs requires an accurate description of how CO2 moves and interacts with the rock. Relative permeability, or the description of how efficiently a fluid moves in a porous media while in the presence of other fluids, is the most utilized tool for describing the competitive flow of fluids. In this study, we detail a modified unsteady-state methodology using computed tomography that provides relative permeability quickly and can be used to analyze heterogenous media. The methodology can be used to describe the impacts of dissolution on CO2 transport through reactive cores, which to the authors knowledge, has not been described in the literature previously.
机译:使用不稳定状态方法和计算机断层扫描的组合,在反应性和非反应岩芯中测定超临界CO2(SCCO(2))和盐水的相对渗透性。使用医疗级CT扫描仪对实验进行控制,以使用自定义Python脚本确定饱和度。然后使用核心过的饱和度和差压来导出四个经验常数以计算相对渗透性。这种方法可以提高时间效率,同时降低实验复杂性。附加盟友,我们表明该方法可用于确定广泛岩性和流速中的SCCO(2)相对渗透率,以及在SCCO(2)洪水期间解释矩阵溶解的能力。 :捕获和储存二氧化碳(CO2)的能力是缓慢气候变化的重要组成部分。 CO2的长期地质存储需要准确描述地下岩层中注射的CO2,以考虑储存的卷并发展充分的风险监测。有效地描述在地下水库中注入的CO2的迁移需要CO2如何移动和与岩石相互作用的准确描述。相对渗透性,或者描述在其他流体存在下,流体在多孔介质中移动的描述是用于描述流体竞争流动的最具利用工具。在这项研究中,我们使用计算机断层扫描进行了一种改进的非定常态方法,该方法可快速提供相对渗透性,可用于分析异质介质。该方法可用于描述通过对提交人知识的反应核来描述对二氧化碳运输的影响,这在文献中尚未在文献中描述。

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  • 来源
    《Advances in Water Resources》 |2021年第7期|103953.1-103953.11|共11页
  • 作者单位

    US DOE Natl Energy Technol Lab 3610 Collins Ferry Rd Morgantown WV 26507 USA|LRST 3610 Collins Ferry Rd Morgantown WV 26507 USA;

    US DOE Natl Energy Technol Lab 3610 Collins Ferry Rd Morgantown WV 26507 USA|LRST 3610 Collins Ferry Rd Morgantown WV 26507 USA;

    US DOE Natl Energy Technol Lab 3610 Collins Ferry Rd Morgantown WV 26507 USA;

    US DOE Natl Energy Technol Lab 3610 Collins Ferry Rd Morgantown WV 26507 USA|LRST 3610 Collins Ferry Rd Morgantown WV 26507 USA|Sandia Natl Labs 4100 Natl Pk Highway Carlsbad NM 88220 USA;

    US DOE Natl Energy Technol Lab 3610 Collins Ferry Rd Morgantown WV 26507 USA|LRST 3610 Collins Ferry Rd Morgantown WV 26507 USA;

    US DOE Natl Energy Technol Lab 3610 Collins Ferry Rd Morgantown WV 26507 USA|West Virginia Geol & Econ Survey 1 Mont Chateau Rd Morgantown WV 26508 USA;

    US DOE Natl Energy Technol Lab 3610 Collins Ferry Rd Morgantown WV 26507 USA|LRST 3610 Collins Ferry Rd Morgantown WV 26507 USA|WE2 Collins Ferry Rd Morgantown WV 26507 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Carbon storage; Computed tomography; Supercritical CO2; Unsteady-state; Relative permeability;

    机译:碳储存;计算断层扫描;超临界CO2;不稳定状态;相对渗透性;

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