Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and Copper

Detalhes bibliográficos
Autor(a) principal: Namur,Ricardo Sanson
Data de Publicação: 2022
Outros Autores: Azevedo,Maxwell Silva, Izumi,Marcel Tadashi, Aguiar,Denilson Jose Marcolino de, Zilnyk,Kahl Dick, Cintho,Osvaldo Mitsuyuki
Tipo de documento: Artigo
Idioma: eng
Título da fonte: Materials research (São Carlos. Online)
Texto Completo: http://old.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392022000100290
Resumo: Abstract The effect of temperature was investigated on the consolidation of blended elemental powders of aluminum and copper by equal channel angular pressing (ECAP). Aluminum and Copper powders (1:1% vol.) were blended and consolidated in a 90° ECAP die at room (RT) and cryogenic temperatures (CT - ~77 K). ECAP samples were pressed until 4 passes at room temperature in route Bc. As a reference, a sample was obtained by conventional uniaxial pressing. The obtained results indicated a much denser (>99.5%) and harder structure by cryogenic ECAP. The hardness after one pass at CT was comparable with 4 passes at room temperature. Tensile tests performed at CT for materials with similar chemical composition showed a simultaneous increase in strength and ductility at CT, corroborating the results obtained by ECAP. The partial suppression of dynamic recovery and the activation and the transition between deformation mechanisms at CT, as well as stacking fault energies (SFE) of such metals, played an important role in these results. Copper presented a much higher capability of strain hardening than aluminum, due to its lower SFE and much lower homologous temperature. X-ray diffraction indicated a strong correlation between the variation of average microstrain and the variation of hardness on both metals. The results of this study demonstrated the great potential of the application of very low temperatures for the obtaining of deformation metal-metal composites.
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spelling Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and CopperCryogenic deformationequal channel angular pressingpowder consolidationdeformation processed metal-metal compositeAbstract The effect of temperature was investigated on the consolidation of blended elemental powders of aluminum and copper by equal channel angular pressing (ECAP). Aluminum and Copper powders (1:1% vol.) were blended and consolidated in a 90° ECAP die at room (RT) and cryogenic temperatures (CT - ~77 K). ECAP samples were pressed until 4 passes at room temperature in route Bc. As a reference, a sample was obtained by conventional uniaxial pressing. The obtained results indicated a much denser (>99.5%) and harder structure by cryogenic ECAP. The hardness after one pass at CT was comparable with 4 passes at room temperature. Tensile tests performed at CT for materials with similar chemical composition showed a simultaneous increase in strength and ductility at CT, corroborating the results obtained by ECAP. The partial suppression of dynamic recovery and the activation and the transition between deformation mechanisms at CT, as well as stacking fault energies (SFE) of such metals, played an important role in these results. Copper presented a much higher capability of strain hardening than aluminum, due to its lower SFE and much lower homologous temperature. X-ray diffraction indicated a strong correlation between the variation of average microstrain and the variation of hardness on both metals. The results of this study demonstrated the great potential of the application of very low temperatures for the obtaining of deformation metal-metal composites.ABM, ABC, ABPol2022-01-01info:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersiontext/htmlhttp://old.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392022000100290Materials Research v.25 2022reponame:Materials research (São Carlos. Online)instname:Universidade Federal de São Carlos (UFSCAR)instacron:ABM ABC ABPOL10.1590/1980-5373-mr-2021-0414info:eu-repo/semantics/openAccessNamur,Ricardo SansonAzevedo,Maxwell SilvaIzumi,Marcel TadashiAguiar,Denilson Jose Marcolino deZilnyk,Kahl DickCintho,Osvaldo Mitsuyukieng2022-03-17T00:00:00Zoai:scielo:S1516-14392022000100290Revistahttp://www.scielo.br/mrPUBhttps://old.scielo.br/oai/scielo-oai.phpdedz@power.ufscar.br1980-53731516-1439opendoar:2022-03-17T00:00Materials research (São Carlos. Online) - Universidade Federal de São Carlos (UFSCAR)false
dc.title.none.fl_str_mv Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and Copper
title Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and Copper
spellingShingle Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and Copper
Namur,Ricardo Sanson
Cryogenic deformation
equal channel angular pressing
powder consolidation
deformation processed metal-metal composite
title_short Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and Copper
title_full Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and Copper
title_fullStr Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and Copper
title_full_unstemmed Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and Copper
title_sort Cryogenic and Room Temperature ECAP Consolidation of Blended Elemental Powders of Aluminum and Copper
author Namur,Ricardo Sanson
author_facet Namur,Ricardo Sanson
Azevedo,Maxwell Silva
Izumi,Marcel Tadashi
Aguiar,Denilson Jose Marcolino de
Zilnyk,Kahl Dick
Cintho,Osvaldo Mitsuyuki
author_role author
author2 Azevedo,Maxwell Silva
Izumi,Marcel Tadashi
Aguiar,Denilson Jose Marcolino de
Zilnyk,Kahl Dick
Cintho,Osvaldo Mitsuyuki
author2_role author
author
author
author
author
dc.contributor.author.fl_str_mv Namur,Ricardo Sanson
Azevedo,Maxwell Silva
Izumi,Marcel Tadashi
Aguiar,Denilson Jose Marcolino de
Zilnyk,Kahl Dick
Cintho,Osvaldo Mitsuyuki
dc.subject.por.fl_str_mv Cryogenic deformation
equal channel angular pressing
powder consolidation
deformation processed metal-metal composite
topic Cryogenic deformation
equal channel angular pressing
powder consolidation
deformation processed metal-metal composite
description Abstract The effect of temperature was investigated on the consolidation of blended elemental powders of aluminum and copper by equal channel angular pressing (ECAP). Aluminum and Copper powders (1:1% vol.) were blended and consolidated in a 90° ECAP die at room (RT) and cryogenic temperatures (CT - ~77 K). ECAP samples were pressed until 4 passes at room temperature in route Bc. As a reference, a sample was obtained by conventional uniaxial pressing. The obtained results indicated a much denser (>99.5%) and harder structure by cryogenic ECAP. The hardness after one pass at CT was comparable with 4 passes at room temperature. Tensile tests performed at CT for materials with similar chemical composition showed a simultaneous increase in strength and ductility at CT, corroborating the results obtained by ECAP. The partial suppression of dynamic recovery and the activation and the transition between deformation mechanisms at CT, as well as stacking fault energies (SFE) of such metals, played an important role in these results. Copper presented a much higher capability of strain hardening than aluminum, due to its lower SFE and much lower homologous temperature. X-ray diffraction indicated a strong correlation between the variation of average microstrain and the variation of hardness on both metals. The results of this study demonstrated the great potential of the application of very low temperatures for the obtaining of deformation metal-metal composites.
publishDate 2022
dc.date.none.fl_str_mv 2022-01-01
dc.type.driver.fl_str_mv info:eu-repo/semantics/article
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
format article
status_str publishedVersion
dc.identifier.uri.fl_str_mv http://old.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392022000100290
url http://old.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392022000100290
dc.language.iso.fl_str_mv eng
language eng
dc.relation.none.fl_str_mv 10.1590/1980-5373-mr-2021-0414
dc.rights.driver.fl_str_mv info:eu-repo/semantics/openAccess
eu_rights_str_mv openAccess
dc.format.none.fl_str_mv text/html
dc.publisher.none.fl_str_mv ABM, ABC, ABPol
publisher.none.fl_str_mv ABM, ABC, ABPol
dc.source.none.fl_str_mv Materials Research v.25 2022
reponame:Materials research (São Carlos. Online)
instname:Universidade Federal de São Carlos (UFSCAR)
instacron:ABM ABC ABPOL
instname_str Universidade Federal de São Carlos (UFSCAR)
instacron_str ABM ABC ABPOL
institution ABM ABC ABPOL
reponame_str Materials research (São Carlos. Online)
collection Materials research (São Carlos. Online)
repository.name.fl_str_mv Materials research (São Carlos. Online) - Universidade Federal de São Carlos (UFSCAR)
repository.mail.fl_str_mv dedz@power.ufscar.br
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