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Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures

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Summary:Current practices of structural design in reinforced concrete (RC) structures usually account for stresses caused by phenomena such as heat of hydration and drying shrinkage in a quite simplified manner. The present paper aims to evaluate the consequences of explicitly considering self-induced stresses, which actually vary significantly within structural cross-sections, combined with stresses caused by external loads. The used numerical framework involves the explicit calculation of the temperature field in concrete, with proper account for the heat of hydration of cement. Simultaneously, the moisture field in concrete is computed in order to ascertain the relative humidity changes in the pore structure caused by drying, and the inherent shrinkage strains. Stress calculations are made with due consideration of the evolution of mechanical properties of concrete as a function of the equivalent age, as well as relevant phenomena like creep, concrete cracking and influence of reinforcement. Two separate groups of numerical applications are presented, checking influence of the self-induced stresses: a unrestrained concrete prism usually used for shrinkage measurement, and concrete slabs subjected to external loads. Particularly for the second set of applications, the obtained results (with explicit consideration of the differential effects of self-induced stresses) are compared, in terms of cracking loads and crack propagation, to those that would be obtained by using the simplified design approach based on considering uniform shrinkage fields in concrete. It is found that the behaviour of both formulations is quite similar after crack stabilization, but may be quite distinct in the crack propagation phase.
Main Authors:Azenha, Miguel
Other Authors:Sousa, Carlos; Faria, R.; Neves, Afonso
Subject:Cement hydration Service life conditions Differential shrinkage Cracking Numerical simulation
Year:2011
Country:Portugal
Document type:article
Access type:restricted access
Associated institution:Universidade do Minho
Language:English
Origin:RepositóriUM - Universidade do Minho
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author Azenha, Miguel
author2 Sousa, Carlos
Faria, R.
Neves, Afonso
author2_role author
author
author
author_facet Azenha, Miguel
Sousa, Carlos
Faria, R.
Neves, Afonso
author_role author
contributor_name_str_mv Universidade do Minho
country_str PT
creators_json_txt [{\"Person.name\":\"Azenha, Miguel\"},{\"Person.name\":\"Sousa, Carlos\"},{\"Person.name\":\"Faria, R.\"},{\"Person.name\":\"Neves, Afonso\"}]
datacite.contributors.contributor.contributorName.fl_str_mv Universidade do Minho
datacite.creators.creator.creatorName.fl_str_mv Azenha, Miguel
Sousa, Carlos
Faria, R.
Neves, Afonso
datacite.date.Accepted.fl_str_mv 2011-09-14T00:00:00Z
datacite.date.available.fl_str_mv 2011-09-14T09:29:37Z
datacite.date.embargoed.fl_str_mv 2011-09-14T09:29:37Z
datacite.rights.fl_str_mv http://purl.org/coar/access_right/c_16ec
datacite.subjects.subject.fl_str_mv Cement hydration
Service life conditions
Differential shrinkage
Cracking
Numerical simulation
datacite.titles.title.fl_str_mv Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures
dc.contributor.none.fl_str_mv Universidade do Minho
dc.creator.none.fl_str_mv Azenha, Miguel
Sousa, Carlos
Faria, R.
Neves, Afonso
dc.date.Accepted.fl_str_mv 2011-09-14T00:00:00Z
dc.date.available.fl_str_mv 2011-09-14T09:29:37Z
dc.date.embargoed.fl_str_mv 2011-09-14T09:29:37Z
dc.format.none.fl_str_mv application/pdf
dc.identifier.none.fl_str_mv https://hdl.handle.net/1822/13569
dc.language.none.fl_str_mv eng
dc.publisher.none.fl_str_mv Elsevier
dc.rights.none.fl_str_mv http://purl.org/coar/access_right/c_16ec
dc.subject.none.fl_str_mv Cement hydration
Service life conditions
Differential shrinkage
Cracking
Numerical simulation
dc.title.fl_str_mv Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures
dc.type.none.fl_str_mv http://purl.org/coar/resource_type/c_6501
description Current practices of structural design in reinforced concrete (RC) structures usually account for stresses caused by phenomena such as heat of hydration and drying shrinkage in a quite simplified manner. The present paper aims to evaluate the consequences of explicitly considering self-induced stresses, which actually vary significantly within structural cross-sections, combined with stresses caused by external loads. The used numerical framework involves the explicit calculation of the temperature field in concrete, with proper account for the heat of hydration of cement. Simultaneously, the moisture field in concrete is computed in order to ascertain the relative humidity changes in the pore structure caused by drying, and the inherent shrinkage strains. Stress calculations are made with due consideration of the evolution of mechanical properties of concrete as a function of the equivalent age, as well as relevant phenomena like creep, concrete cracking and influence of reinforcement. Two separate groups of numerical applications are presented, checking influence of the self-induced stresses: a unrestrained concrete prism usually used for shrinkage measurement, and concrete slabs subjected to external loads. Particularly for the second set of applications, the obtained results (with explicit consideration of the differential effects of self-induced stresses) are compared, in terms of cracking loads and crack propagation, to those that would be obtained by using the simplified design approach based on considering uniform shrinkage fields in concrete. It is found that the behaviour of both formulations is quite similar after crack stabilization, but may be quite distinct in the crack propagation phase.
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fulltext.url.fl_str_mv https://prod-dspace.uminho.pt/bitstreams/59d7f1f9-10be-4d86-96fc-ef2e983f659c/download
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organization_str_mv urn:organizationAcronym:repositorium
person_str_mv Azenha, Miguel
Sousa, Carlos
Faria, R.
Neves, Afonso
publishDate 2011
publisher.none.fl_str_mv Elsevier
reponame_str RepositóriUM - Universidade do Minho
repository_id_str urn:repositoryAcronym:rum
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spelling engElsevierporCurrent practices of structural design in reinforced concrete (RC) structures usually account for stresses caused by phenomena such as heat of hydration and drying shrinkage in a quite simplified manner. The present paper aims to evaluate the consequences of explicitly considering self-induced stresses, which actually vary significantly within structural cross-sections, combined with stresses caused by external loads. The used numerical framework involves the explicit calculation of the temperature field in concrete, with proper account for the heat of hydration of cement. Simultaneously, the moisture field in concrete is computed in order to ascertain the relative humidity changes in the pore structure caused by drying, and the inherent shrinkage strains. Stress calculations are made with due consideration of the evolution of mechanical properties of concrete as a function of the equivalent age, as well as relevant phenomena like creep, concrete cracking and influence of reinforcement. Two separate groups of numerical applications are presented, checking influence of the self-induced stresses: a unrestrained concrete prism usually used for shrinkage measurement, and concrete slabs subjected to external loads. Particularly for the second set of applications, the obtained results (with explicit consideration of the differential effects of self-induced stresses) are compared, in terms of cracking loads and crack propagation, to those that would be obtained by using the simplified design approach based on considering uniform shrinkage fields in concrete. It is found that the behaviour of both formulations is quite similar after crack stabilization, but may be quite distinct in the crack propagation phase.application/pdfporThermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structuresAzenha, MiguelSousa, CarlosFaria, R.Neves, AfonsoHostingInstitutionOrganizationalUniversidade do Minhoe-mailmailto:repositorium@usdb.uminho.ptrepositorium@usdb.uminho.ptISSNIsPartOf0141-0296DOIIsPartOf10.1016/j.engstruct.2011.07.0082011-09-14T09:29:37Z2011-09-1420102011-09-14T00:00:00ZHandlehttps://hdl.handle.net/1822/13569http://purl.org/coar/access_right/c_16ecrestricted accessCement hydrationService life conditionsDifferential shrinkageCrackingNumerical simulation2781164 bytesliteraturehttp://purl.org/coar/resource_type/c_6501journal articlehttp://purl.org/coar/access_right/c_16ecapplication/pdffulltexthttps://prod-dspace.uminho.pt/bitstreams/59d7f1f9-10be-4d86-96fc-ef2e983f659c/download
spellingShingle Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures
Azenha, Miguel
Cement hydration
Service life conditions
Differential shrinkage
Cracking
Numerical simulation
status SINGLETON
subject.fl_str_mv Cement hydration
Service life conditions
Differential shrinkage
Cracking
Numerical simulation
title Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures
title_full Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures
title_fullStr Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures
title_full_unstemmed Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures
title_short Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures
title_sort Thermo–hygro–mechanical modelling of self-induced stresses during the service life of RC structures
topic Cement hydration
Service life conditions
Differential shrinkage
Cracking
Numerical simulation
topic_facet Cement hydration
Service life conditions
Differential shrinkage
Cracking
Numerical simulation
url https://hdl.handle.net/1822/13569
visible 1