Thermal and mechanical aspects of the response of embedded retaining walls used as shallow geothermal heat exchangers
•Overview of use of retaining walls in shallow geothermal systems.•Review of tunnel environment in context of heat exchange potential.•Overview of air-wall heat convection parameters and their suitability in this application.•Analysis examining heat flows in tunnel wall system.•Analysis to understan...
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Veröffentlicht in: | Energy and buildings 2016-08, Vol.125, p.130-141 |
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description | •Overview of use of retaining walls in shallow geothermal systems.•Review of tunnel environment in context of heat exchange potential.•Overview of air-wall heat convection parameters and their suitability in this application.•Analysis examining heat flows in tunnel wall system.•Analysis to understand impact of heat exchange on wall mechanical response.
Engineering structures embedded in the ground can be utilised as the heat exchange circuit in shallow geothermal energy systems. Thermally-activated retaining walls supporting the sides of tunnels and basements have been completed in a small number of projects but limited operational information has been published. Such information that is available suggests that in tunnels, climatic temperature changes may dominate the thermo-mechanical response of the wall system. This article first presents an overview of thermally-activated retaining wall behaviour and observations of tunnel environments generally, which points to the importance of the tunnel/air void characteristics in the thermal performance of such systems. In a numerical study it is shown that the main mechanism for heat exchange is between the air-void and the wall rather than the ground and that the thermal characterisation of the boundary between the wall and the air void requires greater scrutiny, to ensure realistic predictions of energy performance. The numerical study also shows that changes to the wall mechanical response are dominated by seasonal temperature changes, and using the wall for heat exchange has a rather small effect. It is apparent that these seasonal changes are not insignificant and their magnitude is also a function of the ratio of the coefficient of thermal expansion of the structural elements and that of the surrounding ground, and should be considered in design. |
doi_str_mv | 10.1016/j.enbuild.2016.04.075 |
format | Article |
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Engineering structures embedded in the ground can be utilised as the heat exchange circuit in shallow geothermal energy systems. Thermally-activated retaining walls supporting the sides of tunnels and basements have been completed in a small number of projects but limited operational information has been published. Such information that is available suggests that in tunnels, climatic temperature changes may dominate the thermo-mechanical response of the wall system. This article first presents an overview of thermally-activated retaining wall behaviour and observations of tunnel environments generally, which points to the importance of the tunnel/air void characteristics in the thermal performance of such systems. In a numerical study it is shown that the main mechanism for heat exchange is between the air-void and the wall rather than the ground and that the thermal characterisation of the boundary between the wall and the air void requires greater scrutiny, to ensure realistic predictions of energy performance. The numerical study also shows that changes to the wall mechanical response are dominated by seasonal temperature changes, and using the wall for heat exchange has a rather small effect. It is apparent that these seasonal changes are not insignificant and their magnitude is also a function of the ratio of the coefficient of thermal expansion of the structural elements and that of the surrounding ground, and should be considered in design.</description><identifier>ISSN: 0378-7788</identifier><identifier>DOI: 10.1016/j.enbuild.2016.04.075</identifier><language>eng</language><publisher>Elsevier B.V</publisher><subject>Geothermal energy ; Grounds ; Heat exchange ; Numerical modelling ; Renewable heating and cooling ; Retaining walls ; Shallow geothermal ; Thermal expansion ; Tunnels ; Tunnels (transportation) ; Voids ; Walls</subject><ispartof>Energy and buildings, 2016-08, Vol.125, p.130-141</ispartof><rights>2016 Elsevier B.V.</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c414t-737f157c918fde2973355f84937cf7b27ba08100df40bbfed57586cc3e93b8743</citedby><cites>FETCH-LOGICAL-c414t-737f157c918fde2973355f84937cf7b27ba08100df40bbfed57586cc3e93b8743</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://dx.doi.org/10.1016/j.enbuild.2016.04.075$$EHTML$$P50$$Gelsevier$$H</linktohtml><link.rule.ids>314,777,781,3537,27905,27906,45976</link.rule.ids></links><search><creatorcontrib>Bourne-Webb, P.J.</creatorcontrib><creatorcontrib>Bodas Freitas, T.M.</creatorcontrib><creatorcontrib>da Costa Gonçalves, R.A.</creatorcontrib><title>Thermal and mechanical aspects of the response of embedded retaining walls used as shallow geothermal heat exchangers</title><title>Energy and buildings</title><description>•Overview of use of retaining walls in shallow geothermal systems.•Review of tunnel environment in context of heat exchange potential.•Overview of air-wall heat convection parameters and their suitability in this application.•Analysis examining heat flows in tunnel wall system.•Analysis to understand impact of heat exchange on wall mechanical response.
Engineering structures embedded in the ground can be utilised as the heat exchange circuit in shallow geothermal energy systems. Thermally-activated retaining walls supporting the sides of tunnels and basements have been completed in a small number of projects but limited operational information has been published. Such information that is available suggests that in tunnels, climatic temperature changes may dominate the thermo-mechanical response of the wall system. This article first presents an overview of thermally-activated retaining wall behaviour and observations of tunnel environments generally, which points to the importance of the tunnel/air void characteristics in the thermal performance of such systems. In a numerical study it is shown that the main mechanism for heat exchange is between the air-void and the wall rather than the ground and that the thermal characterisation of the boundary between the wall and the air void requires greater scrutiny, to ensure realistic predictions of energy performance. The numerical study also shows that changes to the wall mechanical response are dominated by seasonal temperature changes, and using the wall for heat exchange has a rather small effect. It is apparent that these seasonal changes are not insignificant and their magnitude is also a function of the ratio of the coefficient of thermal expansion of the structural elements and that of the surrounding ground, and should be considered in design.</description><subject>Geothermal energy</subject><subject>Grounds</subject><subject>Heat exchange</subject><subject>Numerical modelling</subject><subject>Renewable heating and cooling</subject><subject>Retaining walls</subject><subject>Shallow geothermal</subject><subject>Thermal expansion</subject><subject>Tunnels</subject><subject>Tunnels (transportation)</subject><subject>Voids</subject><subject>Walls</subject><issn>0378-7788</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2016</creationdate><recordtype>article</recordtype><recordid>eNqNkc1OwzAQhHMAiVJ4BCQfuTTYSVw7J4Qq_iQkLuVsOfa6cZU4wZtQeHsStXc4rWY180m7kyQ3jKaMsvXdPoVQjb6xaTbJlBYpFfwsWdBcyJUQUl4kl4h7SumaC7ZIxm0NsdUN0cGSFkytgzezxB7MgKRzZKiBRMC-CwizhrYCa8FOy0H74MOOHHTTIBlxWmokWE-yO5AddMOJXoMeCHzP-B1EvErOnW4Qrk9zmXw8PW43L6u39-fXzcPbyhSsGFYiF45xYUomnYWsFHnOuZNFmQvjRJWJSlPJKLWuoFXlwHLB5dqYHMq8kqLIl8ntkdvH7nMEHFTr0UDT6ADdiIrJjPOCcS7-YaVSsJLRmcqPVhM7xAhO9dG3Ov4oRtXcgtqrUwtqbkHRQk0tTLn7Yw6mk788RIXGQzBgfZyerWzn_yD8AiJ6lpk</recordid><startdate>20160801</startdate><enddate>20160801</enddate><creator>Bourne-Webb, P.J.</creator><creator>Bodas Freitas, T.M.</creator><creator>da Costa Gonçalves, R.A.</creator><general>Elsevier B.V</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7ST</scope><scope>C1K</scope><scope>SOI</scope><scope>8FD</scope><scope>F28</scope><scope>FR3</scope><scope>KR7</scope></search><sort><creationdate>20160801</creationdate><title>Thermal and mechanical aspects of the response of embedded retaining walls used as shallow geothermal heat exchangers</title><author>Bourne-Webb, P.J. ; Bodas Freitas, T.M. ; da Costa Gonçalves, R.A.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c414t-737f157c918fde2973355f84937cf7b27ba08100df40bbfed57586cc3e93b8743</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2016</creationdate><topic>Geothermal energy</topic><topic>Grounds</topic><topic>Heat exchange</topic><topic>Numerical modelling</topic><topic>Renewable heating and cooling</topic><topic>Retaining walls</topic><topic>Shallow geothermal</topic><topic>Thermal expansion</topic><topic>Tunnels</topic><topic>Tunnels (transportation)</topic><topic>Voids</topic><topic>Walls</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Bourne-Webb, P.J.</creatorcontrib><creatorcontrib>Bodas Freitas, T.M.</creatorcontrib><creatorcontrib>da Costa Gonçalves, R.A.</creatorcontrib><collection>CrossRef</collection><collection>Environment Abstracts</collection><collection>Environmental Sciences and Pollution Management</collection><collection>Environment Abstracts</collection><collection>Technology Research Database</collection><collection>ANTE: Abstracts in New Technology & Engineering</collection><collection>Engineering Research Database</collection><collection>Civil Engineering Abstracts</collection><jtitle>Energy and buildings</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Bourne-Webb, P.J.</au><au>Bodas Freitas, T.M.</au><au>da Costa Gonçalves, R.A.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Thermal and mechanical aspects of the response of embedded retaining walls used as shallow geothermal heat exchangers</atitle><jtitle>Energy and buildings</jtitle><date>2016-08-01</date><risdate>2016</risdate><volume>125</volume><spage>130</spage><epage>141</epage><pages>130-141</pages><issn>0378-7788</issn><abstract>•Overview of use of retaining walls in shallow geothermal systems.•Review of tunnel environment in context of heat exchange potential.•Overview of air-wall heat convection parameters and their suitability in this application.•Analysis examining heat flows in tunnel wall system.•Analysis to understand impact of heat exchange on wall mechanical response.
Engineering structures embedded in the ground can be utilised as the heat exchange circuit in shallow geothermal energy systems. Thermally-activated retaining walls supporting the sides of tunnels and basements have been completed in a small number of projects but limited operational information has been published. Such information that is available suggests that in tunnels, climatic temperature changes may dominate the thermo-mechanical response of the wall system. This article first presents an overview of thermally-activated retaining wall behaviour and observations of tunnel environments generally, which points to the importance of the tunnel/air void characteristics in the thermal performance of such systems. In a numerical study it is shown that the main mechanism for heat exchange is between the air-void and the wall rather than the ground and that the thermal characterisation of the boundary between the wall and the air void requires greater scrutiny, to ensure realistic predictions of energy performance. The numerical study also shows that changes to the wall mechanical response are dominated by seasonal temperature changes, and using the wall for heat exchange has a rather small effect. It is apparent that these seasonal changes are not insignificant and their magnitude is also a function of the ratio of the coefficient of thermal expansion of the structural elements and that of the surrounding ground, and should be considered in design.</abstract><pub>Elsevier B.V</pub><doi>10.1016/j.enbuild.2016.04.075</doi><tpages>12</tpages></addata></record> |
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source | Elsevier ScienceDirect Journals |
subjects | Geothermal energy Grounds Heat exchange Numerical modelling Renewable heating and cooling Retaining walls Shallow geothermal Thermal expansion Tunnels Tunnels (transportation) Voids Walls |
title | Thermal and mechanical aspects of the response of embedded retaining walls used as shallow geothermal heat exchangers |
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