Modeling pure methane hydrate dissociation using a numerical simulator from a novel combination of x-ray computed tomography and macroscopic data (Record no. 170839)

MARC details
000 -LEADER
fixed length control field 02355nab a2200205 4500
008 - CÓDIGOS DE INFORMACIÓN DE LONGITUD FIJA - INFORMACIÓN GENERAL
Campo de control de longitud fija 260224s2009 xxu
245 00 - TITULO
Título Modeling pure methane hydrate dissociation using a numerical simulator from a novel combination of x-ray computed tomography and macroscopic data
260 ## - PUBLICACION, DISTRIBUCION, ETC
Lugar de publicación, distribución, etc.
Nombre de publicador, distribuidor, etc.
Fecha de publicación, distribución, etc. nov./dic. 2009
270 ## - FECHA DE CARGA
Fecha de carga 09/06/2010 ; 09/06/2010
300 ## - DESCRIPCION FISICA
Otra extensión 8 p. ; 5958-5965
520 ## - RESUMEN, ETC
Resumen Transcripción del resumen del autor. The numerical simulator TOUGH+HYDRATE (T+H) was used to predict the transient pure methane hydrate (no sediment) dissociation data. X-ray computed tomography (CT) was used to visualize the methane hydrate formation and dissociation processes. A methane hydrate sample was formed from granular ice in a cylindrical vessel, and slow depressurization combined with thermal stimulation was applied to dissociate the hydrate sample. CT images showed that the water produced from the hydrate dissociation accumulated at the bottom of the vessel and increased the hydrate dissociation rate there. CT images were obtained during hydrate dissociation to confirm the radial dissociation of the hydrate sample. This radial dissociation process has implications for dissociation of hydrates in pipelines, suggesting lower dissociation times than for longitudinal dissociation. These observations were also confirmed by the numerical simulator predictions, which were in good agreement with the measured thermal data during hydrate dissociation. System pressure and sample temperature measured at the sample center followed the CH4 hydrate Lw+H+V equilibrium line during hydrate dissociation. The predicted cumulative methane gas production was within 5% of the measured data. Thus, this study validated our simulation approach and assumptions, which include stationary pure methane hydrate-skeleton, equilibrium hydrate-dissociation and heat- and mass-transfer in predicting hydrate dissociation in the absence of sediments. It should be noted that the application of T+H for the pure methane hydrate system (no sediment) is outside the general applicability limits of T+H.
581 ## - ESTADO DE COLECCIÓN
Estado de colección 6
773 0# - CORRECCIÓN
Título Energy & fuels
Partes relacionadas 23
942 ## - DESC. DE MATERIAL
Tipo de item KOHA Artículo de Revista
100 1# - RESPONSABLE PERSONAL
Apellido, Nombre Gupta, Arvind
9 (RLIN) 42385
100 1# - RESPONSABLE PERSONAL
Apellido, Nombre Moridis, George J.
9 (RLIN) 33629
100 1# - RESPONSABLE PERSONAL
Apellido, Nombre Kneafsey, Timothy J.
9 (RLIN) 37731
Holdings
Biblioteca propietaria Biblioteca actual Fecha de adquisición Inventario Total de préstamos Inventario Fecha de carga Tipo de item KOHA
Biblioteca Alejandro Angel Bulgheroni Biblioteca Alejandro Angel Bulgheroni 05/03/2026 200045693   200045693 05/03/2026 Artículo de Revista


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