Temperature and pressure corrections applied to rock thermal conductivity: impact on subsurface temperature prognosis and heat-flow determination in geothermal exploration

Abstract Precise knowledge of the subsurface thermal field plays a key role in the assessment of geothermal targets. Unfortunately, deep underground temperature data is generally scarce and a matter of research. To achieve first estimates for subsurface temperatures, steady-state conductive thermal...

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Main Authors: Ben Norden, Andrea Förster, Hans-Jürgen Förster, Sven Fuchs
Format: Article
Language:English
Published: SpringerOpen 2020-01-01
Series:Geothermal Energy
Subjects:
Online Access:https://doi.org/10.1186/s40517-020-0157-0
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spelling doaj-67d3c7ba4f3c468dbcc3601dc74a9e082021-01-24T12:23:15ZengSpringerOpenGeothermal Energy2195-97062020-01-018111910.1186/s40517-020-0157-0Temperature and pressure corrections applied to rock thermal conductivity: impact on subsurface temperature prognosis and heat-flow determination in geothermal explorationBen Norden0Andrea Förster1Hans-Jürgen Förster2Sven Fuchs3GFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesAbstract Precise knowledge of the subsurface thermal field plays a key role in the assessment of geothermal targets. Unfortunately, deep underground temperature data is generally scarce and a matter of research. To achieve first estimates for subsurface temperatures, steady-state conductive thermal modeling is commonly applied. Thereby the rock thermal conductivity is an essential parameter, which is usually determined under ambient laboratory conditions. To arrive with in situ thermal conductivity, the ambient values need to be corrected for in situ temperature and pressure. In this paper, we apply different conversion functions for the correction of thermal conductivity and study the impact on the resultant temperature and heat flow prognoses for a synthetic, upper crustal sedimentary and a magmatic scenario along 2-D geological cross sections. Application of the correction functions results in maximum temperature prognosis uncertainties of about 8 °C and 55 °C at 2 km depth and at 8 km depth, respectively. The effect positively correlates with the magnitude of the basal heat flow used in modeling. In contrast to the heat flow determined at depth, the resulting surface heat flow is only minor affected by the different correction functions applied. In addition, the modeled temperature at depth is strongly dependent on the type and sequence of application of the pressure and temperature correction equations.https://doi.org/10.1186/s40517-020-0157-0Subsurface temperatureThermal conductivitySteady-stateConductiveThermal modelingp/T relations to thermal conductivity
collection DOAJ
language English
format Article
sources DOAJ
author Ben Norden
Andrea Förster
Hans-Jürgen Förster
Sven Fuchs
spellingShingle Ben Norden
Andrea Förster
Hans-Jürgen Förster
Sven Fuchs
Temperature and pressure corrections applied to rock thermal conductivity: impact on subsurface temperature prognosis and heat-flow determination in geothermal exploration
Geothermal Energy
Subsurface temperature
Thermal conductivity
Steady-state
Conductive
Thermal modeling
p/T relations to thermal conductivity
author_facet Ben Norden
Andrea Förster
Hans-Jürgen Förster
Sven Fuchs
author_sort Ben Norden
title Temperature and pressure corrections applied to rock thermal conductivity: impact on subsurface temperature prognosis and heat-flow determination in geothermal exploration
title_short Temperature and pressure corrections applied to rock thermal conductivity: impact on subsurface temperature prognosis and heat-flow determination in geothermal exploration
title_full Temperature and pressure corrections applied to rock thermal conductivity: impact on subsurface temperature prognosis and heat-flow determination in geothermal exploration
title_fullStr Temperature and pressure corrections applied to rock thermal conductivity: impact on subsurface temperature prognosis and heat-flow determination in geothermal exploration
title_full_unstemmed Temperature and pressure corrections applied to rock thermal conductivity: impact on subsurface temperature prognosis and heat-flow determination in geothermal exploration
title_sort temperature and pressure corrections applied to rock thermal conductivity: impact on subsurface temperature prognosis and heat-flow determination in geothermal exploration
publisher SpringerOpen
series Geothermal Energy
issn 2195-9706
publishDate 2020-01-01
description Abstract Precise knowledge of the subsurface thermal field plays a key role in the assessment of geothermal targets. Unfortunately, deep underground temperature data is generally scarce and a matter of research. To achieve first estimates for subsurface temperatures, steady-state conductive thermal modeling is commonly applied. Thereby the rock thermal conductivity is an essential parameter, which is usually determined under ambient laboratory conditions. To arrive with in situ thermal conductivity, the ambient values need to be corrected for in situ temperature and pressure. In this paper, we apply different conversion functions for the correction of thermal conductivity and study the impact on the resultant temperature and heat flow prognoses for a synthetic, upper crustal sedimentary and a magmatic scenario along 2-D geological cross sections. Application of the correction functions results in maximum temperature prognosis uncertainties of about 8 °C and 55 °C at 2 km depth and at 8 km depth, respectively. The effect positively correlates with the magnitude of the basal heat flow used in modeling. In contrast to the heat flow determined at depth, the resulting surface heat flow is only minor affected by the different correction functions applied. In addition, the modeled temperature at depth is strongly dependent on the type and sequence of application of the pressure and temperature correction equations.
topic Subsurface temperature
Thermal conductivity
Steady-state
Conductive
Thermal modeling
p/T relations to thermal conductivity
url https://doi.org/10.1186/s40517-020-0157-0
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AT hansjurgenforster temperatureandpressurecorrectionsappliedtorockthermalconductivityimpactonsubsurfacetemperatureprognosisandheatflowdeterminationingeothermalexploration
AT svenfuchs temperatureandpressurecorrectionsappliedtorockthermalconductivityimpactonsubsurfacetemperatureprognosisandheatflowdeterminationingeothermalexploration
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