Strength behaviors of CH 4 hydrate-bearing silty sediments during thermal decomposition

Predicting the mechanical response of methane hydrate-bearing sediments prior to and during gas production enable appropriate design and anticipate risk due to extraction process of methane from deep-ocean and permafrost setting. In this study, a series of triaxial drained shear tests followed by hy...

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Published in:Journal of Natural Gas Science and Engineering
Main Authors: Song, Yongchen, Luo, Tingting, Madhusudhan, B. N., Sun, Xiang, Liu, Yu, Kong, Xianjing, Li, Yanghui
Format: Article in Journal/Newspaper
Language:English
Published: 2019
Subjects:
Online Access:https://eprints.soton.ac.uk/437119/
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spelling ftsouthampton:oai:eprints.soton.ac.uk:437119 2023-07-30T04:04:55+02:00 Strength behaviors of CH 4 hydrate-bearing silty sediments during thermal decomposition Song, Yongchen Luo, Tingting Madhusudhan, B. N. Sun, Xiang Liu, Yu Kong, Xianjing Li, Yanghui 2019-12-01 https://eprints.soton.ac.uk/437119/ English eng Song, Yongchen, Luo, Tingting, Madhusudhan, B. N., Sun, Xiang, Liu, Yu, Kong, Xianjing and Li, Yanghui (2019) Strength behaviors of CH4 hydrate-bearing silty sediments during thermal decomposition. Journal of Natural Gas Science and Engineering, 72, [103031]. (doi:10.1016/j.jngse.2019.103031 <http://dx.doi.org/10.1016/j.jngse.2019.103031>). Article PeerReviewed 2019 ftsouthampton https://doi.org/10.1016/j.jngse.2019.103031 2023-07-09T22:33:59Z Predicting the mechanical response of methane hydrate-bearing sediments prior to and during gas production enable appropriate design and anticipate risk due to extraction process of methane from deep-ocean and permafrost setting. In this study, a series of triaxial drained shear tests followed by hydrate dissociation were performed on artificial hydrate-bearing silty sediments at given porosity and stress conditions. The peak strength of HBSS increases exponentially with hydrate saturation, which signifies proportional loss of strength due to hydrate dissociation by thermal decomposition. The peak strength of partially dissociated sediments is slightly lower than the strength of sediments with similar hydrate saturation freshly formed. The enhancement effect of CH 4 hydrate on the strength behaviors of HBSS would be more obvious under higher effective confining pressures. The peak strength increase of HBSS was not only due to the increase in cohesion component but also frictional component for a given hydrate saturation and porosity. Thermal decomposition of HBSS is governed directly by its hydrate saturation rather than the confining stress, although with higher confining stress the dissipation of the released gas is affected by the permeability of the sediments thus slightly prolonging the dissociation process. Article in Journal/Newspaper Methane hydrate permafrost University of Southampton: e-Prints Soton Journal of Natural Gas Science and Engineering 72 103031
institution Open Polar
collection University of Southampton: e-Prints Soton
op_collection_id ftsouthampton
language English
description Predicting the mechanical response of methane hydrate-bearing sediments prior to and during gas production enable appropriate design and anticipate risk due to extraction process of methane from deep-ocean and permafrost setting. In this study, a series of triaxial drained shear tests followed by hydrate dissociation were performed on artificial hydrate-bearing silty sediments at given porosity and stress conditions. The peak strength of HBSS increases exponentially with hydrate saturation, which signifies proportional loss of strength due to hydrate dissociation by thermal decomposition. The peak strength of partially dissociated sediments is slightly lower than the strength of sediments with similar hydrate saturation freshly formed. The enhancement effect of CH 4 hydrate on the strength behaviors of HBSS would be more obvious under higher effective confining pressures. The peak strength increase of HBSS was not only due to the increase in cohesion component but also frictional component for a given hydrate saturation and porosity. Thermal decomposition of HBSS is governed directly by its hydrate saturation rather than the confining stress, although with higher confining stress the dissipation of the released gas is affected by the permeability of the sediments thus slightly prolonging the dissociation process.
format Article in Journal/Newspaper
author Song, Yongchen
Luo, Tingting
Madhusudhan, B. N.
Sun, Xiang
Liu, Yu
Kong, Xianjing
Li, Yanghui
spellingShingle Song, Yongchen
Luo, Tingting
Madhusudhan, B. N.
Sun, Xiang
Liu, Yu
Kong, Xianjing
Li, Yanghui
Strength behaviors of CH 4 hydrate-bearing silty sediments during thermal decomposition
author_facet Song, Yongchen
Luo, Tingting
Madhusudhan, B. N.
Sun, Xiang
Liu, Yu
Kong, Xianjing
Li, Yanghui
author_sort Song, Yongchen
title Strength behaviors of CH 4 hydrate-bearing silty sediments during thermal decomposition
title_short Strength behaviors of CH 4 hydrate-bearing silty sediments during thermal decomposition
title_full Strength behaviors of CH 4 hydrate-bearing silty sediments during thermal decomposition
title_fullStr Strength behaviors of CH 4 hydrate-bearing silty sediments during thermal decomposition
title_full_unstemmed Strength behaviors of CH 4 hydrate-bearing silty sediments during thermal decomposition
title_sort strength behaviors of ch 4 hydrate-bearing silty sediments during thermal decomposition
publishDate 2019
url https://eprints.soton.ac.uk/437119/
genre Methane hydrate
permafrost
genre_facet Methane hydrate
permafrost
op_relation Song, Yongchen, Luo, Tingting, Madhusudhan, B. N., Sun, Xiang, Liu, Yu, Kong, Xianjing and Li, Yanghui (2019) Strength behaviors of CH4 hydrate-bearing silty sediments during thermal decomposition. Journal of Natural Gas Science and Engineering, 72, [103031]. (doi:10.1016/j.jngse.2019.103031 <http://dx.doi.org/10.1016/j.jngse.2019.103031>).
op_doi https://doi.org/10.1016/j.jngse.2019.103031
container_title Journal of Natural Gas Science and Engineering
container_volume 72
container_start_page 103031
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