The Journal of Physical Chemistry B · 2007 · 123 citations · 30 references
Hydrate Film GrowthEngineeringHydrate FilmFluid MechanicsExperimental ThermodynamicsGas Bubble SuspendedChemistryNatural Gas HydrateSingle Gas BubbleChemical EngineeringBubble DynamicTransport PhenomenaThermodynamicsMaterials ScienceHydrodynamic CavitationHeat TransferMultiphase FlowGas HydrateSurface ScienceNatural Gas Hydrate SystemHydrate FilmsThermal EngineeringChemical KineticsThermophysical Property
The lateral film growth rate of CH4, C2H4, CO2, CH4 + C2H4, and CH4 + C3H8 hydrates in pure water were measured at four fixed temperatures of 273.4, 275.4, 277.4, and 279.4 K by means of suspending a single gas bubble in water. The results showed that the lateral growth rates of mixed-gas CH4 + C2H4 hydrate films were slower than that of pure gas (CH4 or C2H4) for the same driving force and that of mixed-gas CH4 + C3H8 hydrate film growth was the slowest. The dependence of the thickness of hydrate film on the driving force was investigated, and it was demonstrated that the thickness of hydrate film was inversely proportional to the driving force. It was found that the convective heat transfer control model reported in the literature could be used to formulate the lateral film growth rate v(f) with the driving force DeltaT perfectly for all systems after introduction of the assumption that the thickness of hydrate films is inversely proportional to the driving force DeltaT; i.e., v(f) = psiDeltaT(5/2) is correct and independent of the composition of gas and the type of hydrate. The thicknesses of different gas hydrate films were estimated, and it is demonstrated that the thicknesses of mixed-gas hydrate films were thicker than those of pure gases, which was qualitatively consistent with the experimental result.
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<i>The Properties of Gases and Liquids</i>
Robert C. Reid, T. K. Sherwood, Robert E. Street · Physics Today · 1959 · 14.2K citations
The properties of gases and liquids
Choice Reviews Online · 2001 · 13K citations