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Updated: May 5, 2026

Reservoir Condition Pore-scale Imaging of Multiple Fluid Phases Using X-ray Microtomography
Published on: February 25, 2015
Salinity and Thermal Effects on CO2 Hydrate Formation and Distribution Probed by Raman and Optical Microscopy in
Sadain Zafar1,2, Claire Pirim1,2, Bertrand Chazallon1,2
1Univ. Lille, CNRS, UMR 8523PhLAMLaboratoire de Physique des Lasers Atomes et Molécules, F-59000 Lille, France.
Abstract:
Clathrate hydrates of CO2 were synthesized in NaCl solutions (0-15 wt %) and investigated using micro-Raman spectroscopy and optical microscopy in newly developed high-pressure microcapillaries. This combined approach provides spatially resolved insights into hydrate nucleation, growth, and phase distribution under controlled salinity and thermal conditions, with direct relevance for hydrate-based desalination and CO2 capture. Spectral markers from the CO2 Fermi dyad (ν-, ν+) and O-H stretching region enabled clear discrimination between hydrate-rich domains, hydrate-brine slurries, and residual aqueous phases. In particular, the position and full width at half-maximum of the ν- component were shown to be robust indicators for distinguishing dissolved CO2, liquid CO2, enclathrated CO2, and mixed-phase environments. Regions where hydrates coexist with liquid CO2 or aqueous solution exhibit intermediate spectral signatures that differ unambiguously from those of the corresponding pure phases. Two thermal sequences were examined following primary hydrate formation below 246 K: (i) heating to (near-) dissociation and (ii) cooling under moderate to strong subcooling. Dissociation temperatures decreased systematically with salinity, from ∼279 K in pure water to ∼273 K at 15 wt % NaCl, consistent with thermodynamic inhibition. Pure water exhibited relatively homogeneous hydrate coverage, whereas saline systems developed pronounced interfacial crystallization and heterogeneous hydrate-brine coexistence. During secondary formation, moderate subcooling (∼4 K) favored hydrate reconversion at the gas-liquid interfaces and on residual seed crystals, while deeper subcooling (≥12 K) increased hydrate coverage but amplified salinity-dependent heterogeneities. The interplay between seed availability, hydrate memory effects, salt-induced inhibition, and gas-bubble dynamics was found to govern nucleation pathways and spatial patterns of growth. These results establish a mechanistic link between microscale hydrate distributions and macroscopic formation kinetics, providing a foundation for optimizing hydrate-based water recovery and carbon management processes.

