Application of the thermoporoelasticity model in numerical modelling of underground coal gasification influence on the surrounding medium

The purpose of this paper was to present the thermoporoelasticity model adapted for application in modelling processes, where phase transition may occur, such as during underground coal gasification (UCG). The mathematical model of the medium (soil/rock with pores filled with liquid/gas) in non-isot...

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Main Authors: Uciechowska-Grakowicz Anna, Strzelecki Tomasz
Format: Article
Language:English
Published: Sciendo 2021-06-01
Series:Studia Geotechnica et Mechanica
Subjects:
thm
ucg
Online Access:https://doi.org/10.2478/sgem-2021-0004
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spelling doaj-829edc380ead40679922f65295962e182021-09-05T14:01:53ZengSciendoStudia Geotechnica et Mechanica2083-831X2021-06-0143211613410.2478/sgem-2021-0004Application of the thermoporoelasticity model in numerical modelling of underground coal gasification influence on the surrounding mediumUciechowska-Grakowicz Anna0Strzelecki Tomasz1Wrocław University of Science and Technology, Faculty of Civil Engineering, Wybrzeże Wyspiańskiego 27, 50-370Wrocław, PolandWrocław University of Science and Technology, Faculty of Technology and Life Sciences, Wybrzeże Wyspiańskiego 27, 50-370Wrocław, PolandThe purpose of this paper was to present the thermoporoelasticity model adapted for application in modelling processes, where phase transition may occur, such as during underground coal gasification (UCG). The mathematical model of the medium (soil/rock with pores filled with liquid/gas) in non-isothermal conditions is based on Biot's poroelasticity model. The poroelasticity model is expanded here by the influence of temperature and adjusted to the case where both liquid and highly compressible fluid are present in pores by using the gas laws. This requires considering temperature-dependent physical quantities such as pore fluid density, heat transfer coefficient and viscosity as functions of temperature. Based on the proposed mathematical model and the finite element method, a numerical model was built for the purpose of computing processes occurring in the vicinity of the UCG generator. The result of the authors’ work is a three-dimensional (3D) model, which was not only modified, but derived straight from the laws of thermodynamics, where fields of displacement, temperature and fluid flow are coupled. The model makes it possible to determine results significant to modelling of the UCG process, the reach of the gaseous phase's presence in pores, subsidence values, temperature distribution and directions and rate of seepage, without losing the simplicity and elegance of Biot's original concept. Next, the results of simulations for a hypothetical deposit to estimate the environmental impact of UCG are presented. After applying specific geometry and parameters, the model can be useful for verifying if the chosen technology of UCG in specific conditions will be safe for the environment and infrastructure.https://doi.org/10.2478/sgem-2021-0004poroelasticitythermoporoelasticitycompressible pore fluidthmthermo-hydro-mechanical modellingucgunderground coal gasification
collection DOAJ
language English
format Article
sources DOAJ
author Uciechowska-Grakowicz Anna
Strzelecki Tomasz
spellingShingle Uciechowska-Grakowicz Anna
Strzelecki Tomasz
Application of the thermoporoelasticity model in numerical modelling of underground coal gasification influence on the surrounding medium
Studia Geotechnica et Mechanica
poroelasticity
thermoporoelasticity
compressible pore fluid
thm
thermo-hydro-mechanical modelling
ucg
underground coal gasification
author_facet Uciechowska-Grakowicz Anna
Strzelecki Tomasz
author_sort Uciechowska-Grakowicz Anna
title Application of the thermoporoelasticity model in numerical modelling of underground coal gasification influence on the surrounding medium
title_short Application of the thermoporoelasticity model in numerical modelling of underground coal gasification influence on the surrounding medium
title_full Application of the thermoporoelasticity model in numerical modelling of underground coal gasification influence on the surrounding medium
title_fullStr Application of the thermoporoelasticity model in numerical modelling of underground coal gasification influence on the surrounding medium
title_full_unstemmed Application of the thermoporoelasticity model in numerical modelling of underground coal gasification influence on the surrounding medium
title_sort application of the thermoporoelasticity model in numerical modelling of underground coal gasification influence on the surrounding medium
publisher Sciendo
series Studia Geotechnica et Mechanica
issn 2083-831X
publishDate 2021-06-01
description The purpose of this paper was to present the thermoporoelasticity model adapted for application in modelling processes, where phase transition may occur, such as during underground coal gasification (UCG). The mathematical model of the medium (soil/rock with pores filled with liquid/gas) in non-isothermal conditions is based on Biot's poroelasticity model. The poroelasticity model is expanded here by the influence of temperature and adjusted to the case where both liquid and highly compressible fluid are present in pores by using the gas laws. This requires considering temperature-dependent physical quantities such as pore fluid density, heat transfer coefficient and viscosity as functions of temperature. Based on the proposed mathematical model and the finite element method, a numerical model was built for the purpose of computing processes occurring in the vicinity of the UCG generator. The result of the authors’ work is a three-dimensional (3D) model, which was not only modified, but derived straight from the laws of thermodynamics, where fields of displacement, temperature and fluid flow are coupled. The model makes it possible to determine results significant to modelling of the UCG process, the reach of the gaseous phase's presence in pores, subsidence values, temperature distribution and directions and rate of seepage, without losing the simplicity and elegance of Biot's original concept. Next, the results of simulations for a hypothetical deposit to estimate the environmental impact of UCG are presented. After applying specific geometry and parameters, the model can be useful for verifying if the chosen technology of UCG in specific conditions will be safe for the environment and infrastructure.
topic poroelasticity
thermoporoelasticity
compressible pore fluid
thm
thermo-hydro-mechanical modelling
ucg
underground coal gasification
url https://doi.org/10.2478/sgem-2021-0004
work_keys_str_mv AT uciechowskagrakowiczanna applicationofthethermoporoelasticitymodelinnumericalmodellingofundergroundcoalgasificationinfluenceonthesurroundingmedium
AT strzeleckitomasz applicationofthethermoporoelasticitymodelinnumericalmodellingofundergroundcoalgasificationinfluenceonthesurroundingmedium
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