Effects of thermal variables of solidification on the microstructure, hardness, and microhardness of Cu-Al-Ni-Fe alloys

dc.contributor.authorNASCIMENTO, MAURICIO S.pt_BR
dc.contributor.authorSANTOS, GIVANILDO A. dospt_BR
dc.contributor.authorTERAM, ROGERIOpt_BR
dc.contributor.authorSANTOS, VINICIUS T. dospt_BR
dc.contributor.authorSILVA, MARCIO R. dapt_BR
dc.contributor.authorCOUTO, ANTONIO A.pt_BR
dc.coverageInternacionalpt_BR
dc.date.accessioned2019-07-30T17:38:22Z
dc.date.available2019-07-30T17:38:22Z
dc.date.issued2019pt_BR
dc.description.abstractAluminum bronze is a complex group of copper-based alloys that may include up to 14% aluminum, but lower amounts of nickel and iron are also added, as they di erently a ect alloy characteristics such as strength, ductility, and corrosion resistance. The phase transformations of nickel aluminum–bronze alloys have been the subject of many studies due to the formations of intermetallics promoted by slow cooling. In the present investigation, quaternary systems of aluminum bronze alloys, specifically Cu–10wt%Al–5wt%Ni–5wt%Fe (hypoeutectoid bronze) and Cu–14wt%Al–5wt%Ni–5wi%Fe (hypereutectoid bronze), were directionally solidified upward under transient heat flow conditions. The experimental parameters measured included solidification thermal parameters such as the tip growth rate (VL) and cooling rate (TR), optical microscopy, scanning electron microscopy (SEM) analysis, hardness, and microhardness. We observed that the hardness and microhardness values vary according to the thermal parameters and solidification. We also observed that the Cu–14wt%Al–5wt%Ni–5wi%Fe alloy presented higher hardness values and a more refined structure than the Cu–10wt%Al–5wt%Ni–5wt%Fe alloy. SEM analysis proved the presence of specific intermetallics for each alloy.pt_BR
dc.format.extent1-10pt_BR
dc.identifier.citationNASCIMENTO, MAURICIO S.; SANTOS, GIVANILDO A. dos; TERAM, ROGERIO; SANTOS, VINICIUS T. dos; SILVA, MARCIO R. da; COUTO, ANTONIO A. Effects of thermal variables of solidification on the microstructure, hardness, and microhardness of Cu-Al-Ni-Fe alloys. <b>Materials</b>, v. 12, n. 8, p. 1-10, 2019. DOI: <a href="https://dx.doi.org/10.3390/ma12081267">10.3390/ma12081267</a>. Disponível em: http://repositorio.ipen.br/handle/123456789/29978.
dc.identifier.doi10.3390/ma12081267pt_BR
dc.identifier.fasciculo8pt_BR
dc.identifier.issn1996-1944pt_BR
dc.identifier.orcid0000-0003-1503-1582pt_BR
dc.identifier.percentilfi58.121pt_BR
dc.identifier.percentilfiCiteScore62.00
dc.identifier.urihttp://repositorio.ipen.br/handle/123456789/29978
dc.identifier.vol12pt_BR
dc.relation.ispartofMaterialspt_BR
dc.rightsopenAccesspt_BR
dc.subjectaluminium
dc.subjectbronze
dc.subjectalloys
dc.subjectsolidification
dc.subjectcopper alloys
dc.subjectthermal conductivity
dc.subjecthardness
dc.subjectmicrohardness
dc.subjectintermetallic compounds
dc.titleEffects of thermal variables of solidification on the microstructure, hardness, and microhardness of Cu-Al-Ni-Fe alloyspt_BR
dc.typeArtigo de periódicopt_BR
dspace.entity.typePublication
ipen.autorANTONIO AUGUSTO COUTO
ipen.codigoautor394
ipen.contributor.ipenauthorANTONIO AUGUSTO COUTO
ipen.date.recebimento19-07
ipen.identifier.fi3.057pt_BR
ipen.identifier.fiCiteScore3.5
ipen.identifier.ipendoc25765pt_BR
ipen.identifier.iwosWoSpt_BR
ipen.range.fi3.000 - 4.499
ipen.range.percentilfi50.00 - 74.99
ipen.type.genreArtigo
relation.isAuthorOfPublicationbde343ec-1219-4f47-ab31-55e822cd2ade
relation.isAuthorOfPublication.latestForDiscoverybde343ec-1219-4f47-ab31-55e822cd2ade
sigepi.autor.atividadeCOUTO, ANTONIO A.:394:730:Npt_BR

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