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Enhanced gas production from marine hydrate reservoirs by hydraulic fracturing assisted with sealing burdens

机译:通过液压压裂辅助密封负担的液压压裂增强了船用水合物储层的天然气生产

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摘要

Gas productivity of current hydrate reservoir tests is too lower to meet the demand of the commercial level. The main reasons include the low permeability of hydrate-bearing layer (HBL) and the existence of permeable burdens in natural gas hydrate reservoir, which act as the major barriers for pressure drop propagation during depressurization. However, previous studies are focusing on either permeable burdens or hydraulic fracturing. This paper proposed a novel modified method of depressurization by hydraulic fracturing assisted with sealing burdens. The effects of the radial length and permeability of fractured domain, and the sealing location and length of overburden and underburden layers on hydrate dissociation and gas production were analyzed through numerical simulation. The results indicated:1) The larger permeability and longer radial length of the fracturing domain would promote propagation of pressure drop significantly, and the percentage of gas hydrate dissociation would be increased from 3.99% to 29.86% by hydraulic fracturing. 2) The sealing length of burdens should be larger than the fracturing radial length. The cumulative gas production could be enhanced by 93.25% while the cumulative water production could be decreased by 62.99% compared with no sealing burdens. Base on the novel method, the goals of enhancing gas production and reducing water production would be achieved simultaneously, providing important implications for hydrate commercial exploitation in the future. (c) 2021 Elsevier Ltd. All rights reserved.
机译:电流水合物储存器试验的气体生产率太低,以满足商业水平的需求。主要原因包括水合物轴承层(HBL)的低渗透性,以及天然气水合物储层中的可渗透负担的存在,其作为减压期间压力下降繁殖的主要屏障。然而,之前的研究专注于可渗透的负担或液压压裂。本文提出了一种通过液压压裂辅助密封负担的新型改良方法。通过数值模拟分析了通过数值模拟分析了裂缝结构域的径向长度和渗透性的影响,以及覆盖层和粘附层的密封位置和卷积层。结果表明:1)压裂结构域的较大渗透性和较长的径向长度将显着促进压降的繁殖,气体水合物离解的百分比将通过液压压裂从3.99%增加到29.86%。 2)负担的密封长度应大于压裂径向长度。累积的气体产量可以提高93.25%,而累计水产量可能会降低62.99%,而没有密度负担。基于新型方法,将同时实现增强天然气生产和降低水产的目标,为未来提供了对水合物商业开采的重要意义。 (c)2021 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Energy 》 |2021年第1期| 120889.1-120889.17| 共17页
  • 作者单位

    China Univ Petr East China Minist Educ Key Lab Unconvent Oil & Gas Dev Qingdao 266580 Peoples R China|China Univ Petr East China Sch Petr Engn Qingdao 266580 Peoples R China;

    China Univ Petr East China Minist Educ Key Lab Unconvent Oil & Gas Dev Qingdao 266580 Peoples R China|China Univ Petr East China Sch Petr Engn Qingdao 266580 Peoples R China;

    China Univ Petr East China Minist Educ Key Lab Unconvent Oil & Gas Dev Qingdao 266580 Peoples R China|China Univ Petr East China Sch Petr Engn Qingdao 266580 Peoples R China;

    China Univ Petr East China Minist Educ Key Lab Unconvent Oil & Gas Dev Qingdao 266580 Peoples R China|China Univ Petr East China Sch Petr Engn Qingdao 266580 Peoples R China;

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

    Gas hydrate; Hydraulic fracturing; Enhanced gas production; Sealing burdens; Low permeability; Numerical simulation;

    机译:天然气水合物;液压压裂;增强天然气生产;密封负担;低渗透性;数值模拟;

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