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Shale gas and non-aqueous fracturing fluids: Opportunities and challenges for supercritical CO2

机译:页岩气和非水压裂液:超临界二氧化碳的机遇与挑战

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摘要

Hydraulic fracturing of shale formations in the United States has led to a domestic energy boom. Currently, water is the only fracturing fluid regularly used in commercial shale oil and gas production. Industry and researchers are interested in non-aqueous working fluids due to their potential to increase production, reduce water requirements, and to minimize environmental impacts. Using a combination of new experimental and modeling data at multiple scales, we analyze the benefits and drawbacks of using CO2 as a working fluid for shale gas production. We theorize and outline potential advantages of CO2 including enhanced fracturing and fracture propagation, reduction of flow-blocking mechanisms, increased desorption of methane adsorbed in organic-rich parts of the shale, and a reduction or elimination of the deep re-injection of flow-back water that has been linked to induced seismicity and other environmental concerns. We also examine likely disadvantages including costs and safety issues associated with handling large volumes of supercritical CO2. The advantages could have a significant impact over time leading to substantially increased gas production. In addition, if CO2 proves to be an effective fracturing fluid, then shale gas formations could become a major utilization option for carbon sequestration. Published by Elsevier Ltd.
机译:在美国,页岩地层的水力压裂导致了国内的能源繁荣。当前,水是商业页岩油和天然气生产中经常使用的唯一压裂液。工业界和研究人员对非水工作液很感兴趣,因为它们具有增加产量,减少水的需求并将对环境的影响最小化的潜力。结合多个规模的新实验数据和模型数据,我们分析了将CO2用作页岩气生产的工作流体的利弊。我们从理论上概述了CO2的潜在优势,包括增强压裂和裂缝扩展,减少阻流机理,增加页岩富含有机物部分中吸附的甲烷的解吸,以及减少或消除深层回注。与诱发地震和其他环境问题有关的回水。我们还研究了可能的不利因素,包括与处理大量超临界CO2相关的成本和安全问题。随着时间的流逝,这些优势可能会产生重大影响,从而导致天然气产量大幅增加。另外,如果事实证明CO2是有效的压裂液,那么页岩气地层可能成为固碳的主要利用选择。由Elsevier Ltd.发布

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