Thermo-Hydro-Mechanical Coupled Modeling of Methane Hydrate-Bearing Sediments: Formulation and Application

We present a fully coupled thermo-hydro-mechanical formulation for the simulation of sediment deformation, fluid and heat transport and fluid/solid phase transformations occurring in methane hydrate geological systems. We reformulate the governing equations of energy and mass balance of the Code_Bri...

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Published in:Energies
Main Authors: Maria De La Fuente, Jean Vaunat, Héctor Marín-Moreno
Format: Text
Language:English
Published: Multidisciplinary Digital Publishing Institute 2019
Subjects:
Online Access:https://doi.org/10.3390/en12112178
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author Maria De La Fuente
Jean Vaunat
Héctor Marín-Moreno
author_facet Maria De La Fuente
Jean Vaunat
Héctor Marín-Moreno
author_sort Maria De La Fuente
collection MDPI Open Access Publishing
container_issue 11
container_start_page 2178
container_title Energies
container_volume 12
description We present a fully coupled thermo-hydro-mechanical formulation for the simulation of sediment deformation, fluid and heat transport and fluid/solid phase transformations occurring in methane hydrate geological systems. We reformulate the governing equations of energy and mass balance of the Code_Bright simulator to incorporate hydrate as a new pore phase. The formulation also integrates the constitutive model Hydrate-CASM to capture the effect of hydrate saturation in the mechanical response of the sediment. The thermo-hydraulic capabilities of the formulation are validated against the results from a series of state-of-the-art simulators involved in the first international gas hydrate code comparison study developed by the NETL-USGS. The coupling with the mechanical formulation is investigated by modeling synthetic dissociation tests and validated by reproducing published experimental data from triaxial tests performed in hydrate-bearing sands dissociated via depressurization. Our results show that the formulation captures the dominant mass and heat transfer phenomena occurring during hydrate dissociation and reproduces the stress release and volumetric deformation associated with this process. They also show that the hydrate production method has a strong influence on sediment deformation.
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genre Methane hydrate
genre_facet Methane hydrate
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op_doi https://doi.org/10.3390/en12112178
op_relation H: Geo-Energy
https://dx.doi.org/10.3390/en12112178
op_rights https://creativecommons.org/licenses/by/4.0/
op_source Energies; Volume 12; Issue 11; Pages: 2178
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spelling ftmdpi:oai:mdpi.com:/1996-1073/12/11/2178/ 2025-01-16T23:04:38+00:00 Thermo-Hydro-Mechanical Coupled Modeling of Methane Hydrate-Bearing Sediments: Formulation and Application Maria De La Fuente Jean Vaunat Héctor Marín-Moreno 2019-06-07 application/pdf https://doi.org/10.3390/en12112178 EN eng Multidisciplinary Digital Publishing Institute H: Geo-Energy https://dx.doi.org/10.3390/en12112178 https://creativecommons.org/licenses/by/4.0/ Energies; Volume 12; Issue 11; Pages: 2178 methane hydrate-bearing sediments mechanical response induced by hydrate dissociation thermo-hydro-mechanical behavior fully coupled numerical modeling geomechanics Text 2019 ftmdpi https://doi.org/10.3390/en12112178 2023-07-31T22:20:28Z We present a fully coupled thermo-hydro-mechanical formulation for the simulation of sediment deformation, fluid and heat transport and fluid/solid phase transformations occurring in methane hydrate geological systems. We reformulate the governing equations of energy and mass balance of the Code_Bright simulator to incorporate hydrate as a new pore phase. The formulation also integrates the constitutive model Hydrate-CASM to capture the effect of hydrate saturation in the mechanical response of the sediment. The thermo-hydraulic capabilities of the formulation are validated against the results from a series of state-of-the-art simulators involved in the first international gas hydrate code comparison study developed by the NETL-USGS. The coupling with the mechanical formulation is investigated by modeling synthetic dissociation tests and validated by reproducing published experimental data from triaxial tests performed in hydrate-bearing sands dissociated via depressurization. Our results show that the formulation captures the dominant mass and heat transfer phenomena occurring during hydrate dissociation and reproduces the stress release and volumetric deformation associated with this process. They also show that the hydrate production method has a strong influence on sediment deformation. Text Methane hydrate MDPI Open Access Publishing Energies 12 11 2178
spellingShingle methane hydrate-bearing sediments
mechanical response induced by hydrate dissociation
thermo-hydro-mechanical behavior
fully coupled numerical modeling
geomechanics
Maria De La Fuente
Jean Vaunat
Héctor Marín-Moreno
Thermo-Hydro-Mechanical Coupled Modeling of Methane Hydrate-Bearing Sediments: Formulation and Application
title Thermo-Hydro-Mechanical Coupled Modeling of Methane Hydrate-Bearing Sediments: Formulation and Application
title_full Thermo-Hydro-Mechanical Coupled Modeling of Methane Hydrate-Bearing Sediments: Formulation and Application
title_fullStr Thermo-Hydro-Mechanical Coupled Modeling of Methane Hydrate-Bearing Sediments: Formulation and Application
title_full_unstemmed Thermo-Hydro-Mechanical Coupled Modeling of Methane Hydrate-Bearing Sediments: Formulation and Application
title_short Thermo-Hydro-Mechanical Coupled Modeling of Methane Hydrate-Bearing Sediments: Formulation and Application
title_sort thermo-hydro-mechanical coupled modeling of methane hydrate-bearing sediments: formulation and application
topic methane hydrate-bearing sediments
mechanical response induced by hydrate dissociation
thermo-hydro-mechanical behavior
fully coupled numerical modeling
geomechanics
topic_facet methane hydrate-bearing sediments
mechanical response induced by hydrate dissociation
thermo-hydro-mechanical behavior
fully coupled numerical modeling
geomechanics
url https://doi.org/10.3390/en12112178