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Enhanced CH₄ Recovery Induced via Structural Transformation in the CH₄/CO₂ Replacement That Occurs in sH Hydrates.

Environmental science & technology (2015-06-25)
Yohan Lee, Yunju Kim, Yongwon Seo
ABSTRAKT

The CH4/CO2 replacement that occurs in sH hydrates is investigated, with a primary focus on the enhanced CH4 recovery induced via structural transformation with a CO2 injection. In this study, neohexane (NH) is used as a liquid hydrocarbon guest in the sH hydrates. Direct thermodynamic measurements and spectroscopic identification are investigated to reveal the replacement process for recovering CH4 and simultaneously sequestering CO2 in the sH (CH4 + NH) hydrate. The hydrate phase behavior and the (13)C NMR and Raman spectroscopy results of the CH4 + CO2 + NH systems demonstrate that CO2 functions as a coguest of sH hydrates in CH4-rich conditions, and that the structural transition of sH to sI hydrates occurs in CO2-rich conditions. CO2 molecules are found to preferentially occupy the medium 4(3)5(6)6(3) cages of sH hydrates or the large 5(12)6(2) cages of sI hydrates during the replacement. Due to the favorable structural transition and resulting re-establishment of guest distributions, approximately 88% of the CH4 is recoverable from sH (CH4 + NH) hydrates with a CO2 injection. The hydrate dissociation and subsequent reformation caused by the structural transformation of sH to sI is also confirmed using a high-pressure microdifferential scanning calorimeter through the detection of the significant heat flows generated during the replacement.

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Sigma-Aldrich
Carbon, mesoporous, less than 100 ppm Al, Ti, Fe, Ni, Cu, and Zn combined
Sigma-Aldrich
Carbon, mesoporous, nanopowder, less than 500 ppm Al, Ti, Fe, Ni, Cu, and Zn combined
Sigma-Aldrich
Carbon, mesoporous, nanopowder, graphitized, less than 250 ppm Al, Ti, Fe, Ni, Cu, and Zn combined
Sigma-Aldrich
Carbon, mesoporous
Sigma-Aldrich
Carbon, mesoporous, hydrophilic pore surface
Sigma-Aldrich
Methane-12C, 13C-depleted, 99.99 atom % 12C
Węgiel - Szklisty, foil, 25x25mm, thickness 0.5mm, glassy carbon
Węgiel - Szklisty, rod, 100mm, diameter 3.0mm, glassy carbon
Węgiel - Szklisty, rod, 100mm, diameter 5.0mm, glassy carbon
Węgiel - Szklisty, foam, 300x300mm, thickness 30mm, bulk density 0.05g/cm3, porosity 96.5%
Węgiel - Szklisty, tube, 50mm, outside diameter 10mm, inside diameter 3mm, wall thickness 3.5mm, glassy carbon
Węgiel - Szklisty, rod, 5mm, diameter 3.0mm, glassy carbon
Węgiel - Szklisty, rod, 100mm, diameter 7.0mm, glassy carbon
Węgiel - Szklisty, foil, 100x100mm, thickness 1.0mm, glassy carbon
Węgiel - Szklisty, foam, 300x300mm, thickness 20mm, bulk density 0.05g/cm3, porosity 96.5%
Węgiel - Szklisty, foil, 10x10mm, thickness 4.0mm, glassy carbon
Węgiel - Szklisty, foil, 50x50mm, thickness 4.0mm, glassy carbon
Węgiel - Szklisty, rod, 200mm, diameter 1.0mm, glassy carbon
Węgiel - Szklisty, foil, 100x100mm, thickness 2.0mm, glassy carbon
Węgiel - Szklisty, foil, 50x50mm, thickness 1.0mm, glassy carbon
Węgiel - Szklisty, foil, 100x100mm, thickness 6.0mm, glassy carbon
Węgiel - Szklisty, foam, 150x150mm, thickness 2.5mm, bulk density 0.05g/cm3, porosity 96.5%
Węgiel - Szklisty, rod, 200mm, diameter 3.0mm, glassy carbon
Węgiel - Szklisty, foil, 10x10mm, thickness 1.0mm, glassy carbon
Węgiel - Szklisty, tube, 100mm, outside diameter 10mm, inside diameter 3mm, wall thickness 3.5mm, glassy carbon
Węgiel - Szklisty, rod, 200mm, diameter 5.0mm, glassy carbon
Węgiel - Szklisty, foam, 150x150mm, 0.05g.cmué, porosity 96.5%, 24 pores/cm
Węgiel - Szklisty, foil, 25x25mm, thickness 4.0mm, glassy carbon
Węgiel - Szklisty, rod, 100mm, diameter 1.0mm, glassy carbon
Węgiel - Szklisty, rod, 50mm, diameter 1.0mm, glassy carbon