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Effect of Pore Size Distribution on Dissociation Temperature Depression and Phase Boundary Shift of Gas Hydrate in Various Fine-Grained Sediments

机译:细粒沉积物中孔径分布对气体水合物离解温度降低和相边界移动的影响

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摘要

Capillarity in small, confined pores has a pronounced effect on the depression of the dissociation temperature of gas hydrates, known as the Gibbs-Thomson effect. However, this effect remains poorly understood in natural fine-grained sediments with wide pore size distributions. This study investigated the effect of pore size distributions of fine-grained sediments on the dissociation temperature of a gas hydrate. A gas hydrate was synthesized under partially water-saturated conditions in nanosized silica gels and in various natural fine-grained sediment samples, including sand, silt, diatoms, a diatom-sand mixture, and clayey sediment. The synthesized hydrate samples were thermally dissociated under isochoric conditions, while the melting temperature depression and the shifted phase boundaries were monitored. We observed a dissociation temperature depression of approximately 0.1-0.3 degrees C in silt, 0.2-0.4 degrees C in the diatom sample, and 1.2-1.5 degrees C in clayey silt, while no temperature depression was observed in sand. In a particular case of diatom-sand mixture, the dual porosity condition with the submicron-scale internal pores of diatoms and the macropores of sands rendered dual phase boundaries, one with an similar to 0.4 degrees C temperature depression and one with no depression, respectively. Despite the wide ranges of pore size, gas hydrates were preferentially formed in smaller pores, which comprise less than 40% of the cumulative pore volumes. This was because the initial water loci exacerbated the Gibbs-Thomson effect in partially water-saturated conditions. Our results provide clear experimental evidence on and novel insights into the effect of pore size distributions of fine-grained sediments on the dissociation behavior and phase boundaries of gas hydrates, both in the presence of free gas and in water-limiting conditions that exhibit a considerable Gibbs-Thomson effect.
机译:在狭窄的小孔中的毛细管现象对降低天然气水合物的分解温度有显着影响,这就是吉布斯-汤姆森效应。但是,在具有宽孔径分布的天然细颗粒沉积物中,这种效果仍然知之甚少。这项研究调查了细颗粒沉积物的孔径分布对气体水合物分解温度的影响。在部分水饱和条件下,在纳米级硅胶和各种天然细粒沉积物样品(包括沙子,粉砂,硅藻,硅藻砂混合物和黏土沉积物中)中合成了水合物。在等压条件下将合成的水合物样品热解离,同时监测熔融温度下降和相移边界。我们观察到在粉砂中的离解温度下降约为0.1-0.3摄氏度,在硅藻样品中约为0.2-0.4摄氏度,在粘土质粉砂中约为1.2-1.5摄氏度,而在沙子中未观察到温度下降。在硅藻-砂混合物的特定情况下,具有亚微米级硅藻内部孔隙和砂大孔的双重孔隙条件呈现出双相边界,分别具有类似于0.4摄氏度的温度降低和无凹陷的双重条件。 。尽管孔径范围很广,但气体水合物还是优先在较小的孔中形成,这些孔占累积孔体积的不到40%。这是因为最初的水位在部分水饱和的条件下加剧了吉布斯-汤姆森效应。我们的研究结果提供了清晰的实验证据,并提供了新颖的见解,揭示了细粒沉积物的孔径分布对气体水合物的解离行为和相界的影响,无论是在存在游离气体还是在水限制条件下(表现出相当大的影响)吉布斯-汤姆森效应。

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  • 来源
    《Energy & fuels》 |2018年第4期|5321-5330|共10页
  • 作者单位

    Korea Adv Inst Sci & Technol, Dept Civil & Environm Engn, Daejeon 34141, South Korea;

    Korea Inst Geosci & Mineral Resources KIGAM, Oil & Gas Res Ctr, Daejeon 34132, South Korea;

    Korea Adv Inst Sci & Technol, Dept Civil & Environm Engn, Daejeon 34141, South Korea;

  • 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 00:39:10

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