Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quente

Detalhes bibliográficos
Ano de defesa: 2007
Autor(a) principal: Antonio Adel dos Santos
Orientador(a): Não Informado pela instituição
Banca de defesa: Não Informado pela instituição
Tipo de documento: Tese
Tipo de acesso: Acesso aberto
Idioma: por
Instituição de defesa: Universidade Federal de Minas Gerais
Programa de Pós-Graduação: Não Informado pela instituição
Departamento: Não Informado pela instituição
País: Não Informado pela instituição
Palavras-chave em Português:
Link de acesso: https://hdl.handle.net/1843/MAPO-7REHWM
Resumo: Although equipments used in the steel industry are very large, specifications of shape, dimensions and mechanical properties of flat hot rolled products are very strict. An useful tool to help meet such specifications is the mathematical modelling of process, which can be used for either off line simulation or on line control. In hot strip rolling,the steel strip, after leaving the last rolling stand, is subjected first to a fast cooling on the run-out table and then to a slow cooling after coiling. During the cooling period, austenite decomposition takes place, this phenomenon playing an important role in the final mechanical properties as well as in the coiling temperature control, as this reaction is exothermic. Models for predicting the austenite transformation can be found in the literature, but they are usually limited to specific chemical compositions, often CMn steels, and none of such models takes into account the fact that the cooling rate is changed during the course of transformation. Thus, in this work, an integrated mathematical model for predicting the phase transformation of a commercial CMn steelmicroalloyed with Nb,V,Ti to meet the API-5L-X65 grade, has been developed. Intensive laboratory experiments using a Gleeble 3500 thermomechanical simulator were carried out to raise a database for the model development. The following variables influencing transformation were investigated: strain above and below the nonrecrystallizationtemperature; cooling rate down to coiling, and coiling temperature. Theintegrated model has the following submodels: (i) a model to predict the transformation start temperature, based on empirical formulae; (ii) a transformation kinetics model formulated by the Avrami equation conjugated with the additivity rule; (iii) prediction of volumetric phase fractions of ferrite and pearlite by using a mathematical procedure,in which pearlite formation starts when the carbon content of enriched austenite reaches the extrapolated Acm line under paraequilibrium conditions. The Avrami equation together with the additivity rule was able to describe the transformation even when two distinct cooling regimes were employed. This implies that the model can be applied to any cooling profile in industrial process. Besides, the application of the integrated model to processing conditions of the investigated steel has led to satisfactory predictions of microstructure and hardness observed in the coil. It has also been shown that the two cooling regimes must be considered in the model in order to predict the transformation properly, since the transformation of microalloyed steels advances overthe coiling process, different for the case of CMn steels.
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spelling Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quenteEngenharia metalúrgicaEngenharia de minasAços microligados de alta resistênciaLaminação a quenteTransformação de faseModelo matemáticoAlthough equipments used in the steel industry are very large, specifications of shape, dimensions and mechanical properties of flat hot rolled products are very strict. An useful tool to help meet such specifications is the mathematical modelling of process, which can be used for either off line simulation or on line control. In hot strip rolling,the steel strip, after leaving the last rolling stand, is subjected first to a fast cooling on the run-out table and then to a slow cooling after coiling. During the cooling period, austenite decomposition takes place, this phenomenon playing an important role in the final mechanical properties as well as in the coiling temperature control, as this reaction is exothermic. Models for predicting the austenite transformation can be found in the literature, but they are usually limited to specific chemical compositions, often CMn steels, and none of such models takes into account the fact that the cooling rate is changed during the course of transformation. Thus, in this work, an integrated mathematical model for predicting the phase transformation of a commercial CMn steelmicroalloyed with Nb,V,Ti to meet the API-5L-X65 grade, has been developed. Intensive laboratory experiments using a Gleeble 3500 thermomechanical simulator were carried out to raise a database for the model development. The following variables influencing transformation were investigated: strain above and below the nonrecrystallizationtemperature; cooling rate down to coiling, and coiling temperature. Theintegrated model has the following submodels: (i) a model to predict the transformation start temperature, based on empirical formulae; (ii) a transformation kinetics model formulated by the Avrami equation conjugated with the additivity rule; (iii) prediction of volumetric phase fractions of ferrite and pearlite by using a mathematical procedure,in which pearlite formation starts when the carbon content of enriched austenite reaches the extrapolated Acm line under paraequilibrium conditions. The Avrami equation together with the additivity rule was able to describe the transformation even when two distinct cooling regimes were employed. This implies that the model can be applied to any cooling profile in industrial process. Besides, the application of the integrated model to processing conditions of the investigated steel has led to satisfactory predictions of microstructure and hardness observed in the coil. It has also been shown that the two cooling regimes must be considered in the model in order to predict the transformation properly, since the transformation of microalloyed steels advances overthe coiling process, different for the case of CMn steels.Universidade Federal de Minas Gerais2019-08-09T17:01:07Z2025-09-09T00:29:14Z2019-08-09T17:01:07Z2007-10-05info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/doctoralThesisapplication/pdfhttps://hdl.handle.net/1843/MAPO-7REHWMAntonio Adel dos Santosinfo:eu-repo/semantics/openAccessporreponame:Repositório Institucional da UFMGinstname:Universidade Federal de Minas Gerais (UFMG)instacron:UFMG2025-09-09T00:29:14Zoai:repositorio.ufmg.br:1843/MAPO-7REHWMRepositório InstitucionalPUBhttps://repositorio.ufmg.br/oairepositorio@ufmg.bropendoar:2025-09-09T00:29:14Repositório Institucional da UFMG - Universidade Federal de Minas Gerais (UFMG)false
dc.title.none.fl_str_mv Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quente
title Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quente
spellingShingle Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quente
Antonio Adel dos Santos
Engenharia metalúrgica
Engenharia de minas
Aços microligados de alta resistência
Laminação a quente
Transformação de fase
Modelo matemático
title_short Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quente
title_full Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quente
title_fullStr Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quente
title_full_unstemmed Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quente
title_sort Modelamento da transformação de fases de aços de alta resistência microligados ao Nb durante resfriamento após laminação em tiras a quente
author Antonio Adel dos Santos
author_facet Antonio Adel dos Santos
author_role author
dc.contributor.author.fl_str_mv Antonio Adel dos Santos
dc.subject.por.fl_str_mv Engenharia metalúrgica
Engenharia de minas
Aços microligados de alta resistência
Laminação a quente
Transformação de fase
Modelo matemático
topic Engenharia metalúrgica
Engenharia de minas
Aços microligados de alta resistência
Laminação a quente
Transformação de fase
Modelo matemático
description Although equipments used in the steel industry are very large, specifications of shape, dimensions and mechanical properties of flat hot rolled products are very strict. An useful tool to help meet such specifications is the mathematical modelling of process, which can be used for either off line simulation or on line control. In hot strip rolling,the steel strip, after leaving the last rolling stand, is subjected first to a fast cooling on the run-out table and then to a slow cooling after coiling. During the cooling period, austenite decomposition takes place, this phenomenon playing an important role in the final mechanical properties as well as in the coiling temperature control, as this reaction is exothermic. Models for predicting the austenite transformation can be found in the literature, but they are usually limited to specific chemical compositions, often CMn steels, and none of such models takes into account the fact that the cooling rate is changed during the course of transformation. Thus, in this work, an integrated mathematical model for predicting the phase transformation of a commercial CMn steelmicroalloyed with Nb,V,Ti to meet the API-5L-X65 grade, has been developed. Intensive laboratory experiments using a Gleeble 3500 thermomechanical simulator were carried out to raise a database for the model development. The following variables influencing transformation were investigated: strain above and below the nonrecrystallizationtemperature; cooling rate down to coiling, and coiling temperature. Theintegrated model has the following submodels: (i) a model to predict the transformation start temperature, based on empirical formulae; (ii) a transformation kinetics model formulated by the Avrami equation conjugated with the additivity rule; (iii) prediction of volumetric phase fractions of ferrite and pearlite by using a mathematical procedure,in which pearlite formation starts when the carbon content of enriched austenite reaches the extrapolated Acm line under paraequilibrium conditions. The Avrami equation together with the additivity rule was able to describe the transformation even when two distinct cooling regimes were employed. This implies that the model can be applied to any cooling profile in industrial process. Besides, the application of the integrated model to processing conditions of the investigated steel has led to satisfactory predictions of microstructure and hardness observed in the coil. It has also been shown that the two cooling regimes must be considered in the model in order to predict the transformation properly, since the transformation of microalloyed steels advances overthe coiling process, different for the case of CMn steels.
publishDate 2007
dc.date.none.fl_str_mv 2007-10-05
2019-08-09T17:01:07Z
2019-08-09T17:01:07Z
2025-09-09T00:29:14Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/doctoralThesis
format doctoralThesis
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dc.identifier.uri.fl_str_mv https://hdl.handle.net/1843/MAPO-7REHWM
url https://hdl.handle.net/1843/MAPO-7REHWM
dc.language.iso.fl_str_mv por
language por
dc.rights.driver.fl_str_mv info:eu-repo/semantics/openAccess
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dc.format.none.fl_str_mv application/pdf
dc.publisher.none.fl_str_mv Universidade Federal de Minas Gerais
publisher.none.fl_str_mv Universidade Federal de Minas Gerais
dc.source.none.fl_str_mv reponame:Repositório Institucional da UFMG
instname:Universidade Federal de Minas Gerais (UFMG)
instacron:UFMG
instname_str Universidade Federal de Minas Gerais (UFMG)
instacron_str UFMG
institution UFMG
reponame_str Repositório Institucional da UFMG
collection Repositório Institucional da UFMG
repository.name.fl_str_mv Repositório Institucional da UFMG - Universidade Federal de Minas Gerais (UFMG)
repository.mail.fl_str_mv repositorio@ufmg.br
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