Analysis of the effect of hydrate on water retention curves in gas hydrate-bearing sediments using gas drainage combined with NMR

IF 4.9 2区 工程技术 Q2 ENERGY & FUELS Journal of Natural Gas Science and Engineering Pub Date : 2022-12-01 DOI:10.1016/j.jngse.2022.104833
Zhun Zhang , Fulong Ning , Wanjun Lu , Jiazuo Zhou , Lele Liu , Yunkai Ji , Changfu Wei , Changling Liu
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引用次数: 1

Abstract

Water retention curves play a critical role in numerical simulations for predicting fluid production and sediment deformation behaviors in gas hydrate-bearing sediments (GHBSs). This study uses a new testing assembly that combines gas drainage and low-field nuclear magnetic resonance (NMR) tests to determine the water retention curves of artificially synthesized clay silty specimens. The effect of hydrate on the pore size distributions and water retention curves is analyzed via NMR transverse relaxation time curve distributions, and the mechanism of changes in the water retention curve parameters is further discussed. The results show that hydrate formation decreases the proportion of pores with sizes greater than 15 μm and increases the proportion of pores with sizes less than 3.5 μm in clay silty sediments. Hydrate formation increases capillary pressure and prevents available water migration. The presence of hydrate exponentially increases the normalized capillary pressure but exponentially decreases the normalized curve shape factor, yielding narrower curve distributions. The gas entry pressure and curve shape factor exhibit linear correlations with the pore size distribution parameters. The results imply that the changes in the water retention curves are strongly related to the initial pore size distributions. This study offers a deep understanding of capillary effects-related water retention characteristics and their underlying links with the pore size distributions, and demonstrates that low-field NMR has great potential for characterizing water retention curves of GHBSs.

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气抽结合核磁共振分析水合物对含气水合物沉积物持水曲线的影响
水保持曲线在数值模拟中预测含天然气水合物沉积物的产液和沉积变形行为具有重要作用。本研究采用一种新的测试组合,将气驱和低场核磁共振(NMR)测试相结合,确定人工合成粘土粉质样品的保水性曲线。通过核磁共振横向弛豫时间曲线分布分析水合物对孔隙大小分布和保水曲线的影响,并进一步探讨保水曲线参数变化的机理。结果表明:在粘土粉质沉积物中,水合物的形成降低了15 μm以上孔隙的比例,增加了3.5 μm以下孔隙的比例;水合物的形成增加了毛细管压力,阻止了可用水的迁移。水合物的存在使归一化毛管压力呈指数增加,而归一化曲线形状因子呈指数降低,曲线分布变窄。注气压力和曲线形状因子与孔隙尺寸分布参数呈线性相关。结果表明,水保持曲线的变化与初始孔径分布密切相关。本研究深入了解了毛细管效应相关的保水特性及其与孔隙大小分布的潜在联系,并证明了低场核磁共振在表征温室气体水合物的保水曲线方面具有很大的潜力。
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来源期刊
Journal of Natural Gas Science and Engineering
Journal of Natural Gas Science and Engineering ENERGY & FUELS-ENGINEERING, CHEMICAL
CiteScore
8.90
自引率
0.00%
发文量
388
审稿时长
3.6 months
期刊介绍: The objective of the Journal of Natural Gas Science & Engineering is to bridge the gap between the engineering and the science of natural gas by publishing explicitly written articles intelligible to scientists and engineers working in any field of natural gas science and engineering from the reservoir to the market. An attempt is made in all issues to balance the subject matter and to appeal to a broad readership. The Journal of Natural Gas Science & Engineering covers the fields of natural gas exploration, production, processing and transmission in its broadest possible sense. Topics include: origin and accumulation of natural gas; natural gas geochemistry; gas-reservoir engineering; well logging, testing and evaluation; mathematical modelling; enhanced gas recovery; thermodynamics and phase behaviour, gas-reservoir modelling and simulation; natural gas production engineering; primary and enhanced production from unconventional gas resources, subsurface issues related to coalbed methane, tight gas, shale gas, and hydrate production, formation evaluation; exploration methods, multiphase flow and flow assurance issues, novel processing (e.g., subsea) techniques, raw gas transmission methods, gas processing/LNG technologies, sales gas transmission and storage. The Journal of Natural Gas Science & Engineering will also focus on economical, environmental, management and safety issues related to natural gas production, processing and transportation.
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