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利用原位核磁共振光谱法研究二氧化碳和氮气混合物置换甲烷水合物的动力学。

Kinetics of methane hydrate replacement with carbon dioxide and nitrogen gas mixture using in situ NMR spectroscopy.

机构信息

Department of Energy and Resources Engineering, Kangwon National University , 1 Kangwondaehak-gil, Chuncheon-si, Gangwon-do 200-701, Republic of Korea.

出版信息

Environ Sci Technol. 2015 Feb 3;49(3):1964-71. doi: 10.1021/es504888n. Epub 2015 Jan 21.

Abstract

In this study, the kinetics of methane replacement with carbon dioxide and nitrogen gas in methane gas hydrate prepared in porous silica gel matrices has been studied by in situ (1)H and (13)C NMR spectroscopy. The replacement process was monitored by in situ (1)H NMR spectra, where about 42 mol % of the methane in the hydrate cages was replaced in 65 h. Large amounts of free water were not observed during the replacement process, indicating a spontaneous replacement reaction upon exposing methane hydrate to carbon dioxide and nitrogen gas mixture. From in situ (13)C NMR spectra, we confirmed that the replacement ratio was slightly higher in small cages, but due to the composition of structure I hydrate, the amount of methane evolved from the large cages was larger than that of the small cages. Compositional analysis of vapor and hydrate phases was also carried out after the replacement reaction ceased. Notably, the composition changes in hydrate phases after the replacement reaction would be affected by the difference in the chemical potential between the vapor phase and hydrate surface rather than a pore size effect. These results suggest that the replacement technique provides methane recovery as well as stabilization of the resulting carbon dioxide hydrate phase without melting.

摘要

在这项研究中,通过原位(1)H 和(13)C NMR 光谱研究了在多孔硅胶基质中制备的甲烷水合物中甲烷与二氧化碳和氮气的动力学置换。通过原位(1)H NMR 光谱监测置换过程,其中水合物笼中的约 42 mol%的甲烷在 65 小时内被置换。在置换过程中没有观察到大量的游离水,表明甲烷水合物暴露于二氧化碳和氮气混合物时会发生自发置换反应。从原位(13)C NMR 光谱中,我们确认在小笼中置换比略高,但由于结构 I 水合物的组成,大笼中释放的甲烷量大于小笼中释放的甲烷量。在置换反应停止后,还对气相和水相的组成进行了分析。值得注意的是,置换反应后水相的组成变化将受到气相和水合表面之间化学势差异的影响,而不是孔径效应的影响。这些结果表明,置换技术不仅可以回收甲烷,还可以稳定二氧化碳水合物相,而无需使其熔化。

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