File Download

There are no files associated with this item.

  • Find it @ UNIST can give you direct access to the published full text of this article. (UNISTARs only)
Related Researcher

서용원

Seo, Yongwon
Advanced Clean Energy Lab.
Read More

Views & Downloads

Detailed Information

Cited time in webofscience Cited time in scopus
Metadata Downloads

Mesoscale Modeling of Exploiting Methane Hydrate by CO2 Replacement in Homogeneous Porous Media

Author(s)
Hsieh, Pei-YingSean, Wu-YangSato, ToruSeo, Yong-Won
Issued Date
2020-09
DOI
10.1016/j.ijheatmasstransfer.2020.119741
URI
https://scholarworks.unist.ac.kr/handle/201301/48051
Fulltext
https://www.sciencedirect.com/science/article/pii/S0017931019365305?via%3Dihub
Citation
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, v.158, pp.119741
Abstract
In this study, the objective is to establish a general mesoscale model for replacement so as to precisely estimate the flux of methane hydrate dissociation and CO2 hydrate formation in the cage of hydrate. If homogeneous porous media is assumed, porosity (void fraction) of methane hydrate sediment can be obtained from silica packing in experiment. Based on considering the driving force of free energy in dissociation and formation processes, a new modeling of replacement process is established by considering the individual flux of hydrate surface at stable and unstable regions of CH4 hydrate. At stable CH4 and CO2 hydrates region, it provides a simple situation of discussing the recovery process which CO2 guest particle replaces CH4 in hydrate due to free energy difference. Here, the formation rate of CO2 hydrate is dominated by the dissociation rate of CH4. However, large amount of CH4 dissociated at the surface of hydrate at unstable region. The formation rate become dominated by the formation flux of CO2 hydrate itself. In addition, the high-pressure effect of accelerating the guest gas trapped in hydrate is also considered by applying kinetic theory of gases. By applying CFD method and unstructured grid, it is possible to consider momentum, concentration and thermal distributions in non-equilibrium state simultaneously. To compare with experimental results, flux of methane hydrate dissociation at high surface concentration in simulation are consistent with experiment. (C) 2020 Elsevier Ltd. All rights reserved.
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
ISSN
0017-9310
Keyword (Author)
Gas hydrate dissociationCO2 replacementcomputational fluid dynamicshomogeneous porous media
Keyword
DIRECT NUMERICAL-SIMULATIONPORE-SCALE FLOWDISSOCIATIONCFDRECOVERY

qrcode

Items in Repository are protected by copyright, with all rights reserved, unless otherwise indicated.