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The Inik Sikumi Field Experiment, Alaska North Slope: Design, Operations, and Implications for CO2-CH4 Exchange in Gas Hydrate Reservoirs

机译:Inik Sikumi野外实验,阿拉斯加北坡:天然气水合物气藏中CO2-CH4交换的设计,操作和意义

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摘要

The Ignik Sikumi Gas Hydrate Exchange Field Experiment was conducted by ConocoPhillips in partnership with the U.S. Department of Energy, the Japan Oil, Gas and Metals National Corporation, and the U.S. Geological Survey within the Prudhoe Bay Unit on the Alaska North Slope during 2011 and 2012. The primary goals of the program were to (1) determine the feasibility of gas injection into hydrate-bearing sand reservoirs and (2) observe reservoir response upon subsequent flowback in order to assess the potential for CO2 exchange for CH4 in naturally occurring gas hydrate reservoirs. Initial modeling determined that no feasible means of injection of pure CO2 was likely, given the presence of free water in the reservoir. Laboratory and numerical modeling studies indicated that the injection of a mixture of CO2 and N-2 offered the best potential for gas injection and exchange. The test featured the following primary operational phases: (1) injection of a gaseous phase mixture of CO2, N-2, and chemical tracers; (2) flowback conducted at downhole pressures above the stability threshold for native CH4 hydrate; and (3) an extended (30-days) flowback at pressures near, and then below, the stability threshold of native CH4 hydrate. The test findings indicate that the formation of a range of mixed-gas hydrates resulted in a net exchange of CO2 for CH4 in the reservoir, although the complexity of the subsurface environment renders the nature, extent, and efficiency of the exchange reaction uncertain. The next steps in the evaluation of exchange technology should feature multiple well applications; however, such field test programs will require extensive preparatory experimental and numerical modeling studies and will likely be a secondary priority to further field testing of production through depressurization. Additional insights gained from the field program include the following: (1) gas hydrate destabilization is self-limiting, dispelling any notion of the potential for uncontrolled destabilization; (2) gas hydrate test wells must be carefully designed to enable rapid reinediation of wellbore blockages that will occur during any cessation in operations; (3) sand production during hydrate production likely can be managed through standard engineering controls; and (4) reservoir heat exchange during depressurization was more favorable than expected mitigating concerns for near-wellbore freezing and enabling consideration of more aggressive pressure reduction.
机译:Ignik Sikumi天然气水合物交换野外实验是由康菲石油公司与美国能源部,日本石油,天然气和金属国家公司以及美国地质调查局合作于2011年和2012年在阿拉斯加北坡的Prudhoe湾装置进行的该计划的主要目标是(1)确定向含水合物砂岩储层注气的可行性,以及(2)在随后的回流过程中观察储层的响应,以评估自然存在的天然气水合物中CH4的CO2交换潜力。水库。初始模型确定,考虑到储层中存在游离水,不可能注入任何可行的方式来注入纯二氧化碳。实验室和数值模型研究表明,注入CO2和N-2的混合物为气体注入和交换提供了最佳潜力。该测试具有以下主要操作阶段:(1)注入CO2,N-2和化学示踪剂的气相混合物; (2)在高于天然CH4水合物稳定性阈值的井下压力下进行的回流; (3)在接近或低于天然CH4水合物稳定性阈值的压力下,延长的(30天)回流。测试结果表明,尽管地下环境的复杂性使得交换反应的性质,程度和效率不确定,但一定范围的混合气体水合物的形成导致了储层中CO 2净交换为CH 4。评估交换技术的下一步应以多种油井应用为特色;但是,这样的现场测试程序将需要进行大量的准备实验和数值建模研究,并且可能是通过减压进一步生产现场测试的次要重点。从现场计划中获得的其他见解包括:(1)天然气水合物的失稳是自限性的,消除了任何关于不受控制的失稳可能性的观念; (2)必须仔细设计天然气水合物测试井,以使井筒堵塞在停止运行时能迅速恢复到正常状态; (3)在水合物生产过程中的出砂很可能可以通过标准的工程控制来管理; (4)降压过程中的储层换热比预期的要好,从而减轻了对近井眼冻结的担忧,并可以考虑采取更积极的降压措施。

著录项

  • 来源
    《Energy & fuels》 |2017年第1期|140-153|共14页
  • 作者单位

    Natl Energy Technol Lab, Pittsburgh, PA 15129 USA;

    Conoco Phillips, Anchorage, AK 99501 USA|BP Amer, Houston, TX USA;

    US Geol Survey, Denver, CO 80225 USA;

    Japan Oil Gas & Met Natl Corp, Chiba 2610025, Japan;

    Pacific Northwest Natl Lab, Richland, WA 99354 USA;

    West Virginia Univ, Morgantown, WV 26506 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 00:39:30

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