Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy

Detalhes bibliográficos
Autor(a) principal: Burille, Airton
Data de Publicação: 2021
Outros Autores: Scheid, Adriano, Ferreira, Daniel Correia Freire, Santana, Luciano Meirelles, Kwietniewski, Carlos Eduardo Fortis
Tipo de documento: Artigo
Idioma: eng
Título da fonte: Repositório Institucional da UFRGS
Texto Completo: http://hdl.handle.net/10183/220137
Resumo: This work evaluated the hydrogen embrittlement resistance of the nickel-based UNS N08830 alloy through a hydrogen charging study, slow strain rate (SSR), and fracture toughness tests. The microstructure evaluation showed large-size austenitic grains with no evidence of second phase precipitation, a high fraction of low-angle grain boundaries, and texture of {100} and {111} planes in the rolling direction. From SSR tests results, strain to fracture and reduction of area embrittlement indexes of 25.3 and 42.1% were found, respectively. A modest drop in fracture toughness of approximately 20% was observed. From fractography, it was observed a prevailing mixed micromechanism of fracture comprised of microvoids coalescence and quasi-cleavage flat facets in secondary cracks aligned with the rolling direction. The quasi-cleavage flat facets showed nanovoids at the slip line intersections, which in turn confirmed Hydrogen-Enhanced Localized Plasticity (HELP) as the prominent embrittlement mechanism. Because of the material’s crystallographic texture, a good part of hydrogen was not transported to a direction normal to the applied stress as it would happen for pure diffusion but instead followed the dislocations in the rolling direction. That effect caused that less hydrogen was concentrated in the main crack tip, which inevitably increased the overall energy for fracture.
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spelling Burille, AirtonScheid, AdrianoFerreira, Daniel Correia FreireSantana, Luciano MeirellesKwietniewski, Carlos Eduardo Fortis2021-04-21T04:27:09Z20210921-5093http://hdl.handle.net/10183/220137001124258This work evaluated the hydrogen embrittlement resistance of the nickel-based UNS N08830 alloy through a hydrogen charging study, slow strain rate (SSR), and fracture toughness tests. The microstructure evaluation showed large-size austenitic grains with no evidence of second phase precipitation, a high fraction of low-angle grain boundaries, and texture of {100} and {111} planes in the rolling direction. From SSR tests results, strain to fracture and reduction of area embrittlement indexes of 25.3 and 42.1% were found, respectively. A modest drop in fracture toughness of approximately 20% was observed. From fractography, it was observed a prevailing mixed micromechanism of fracture comprised of microvoids coalescence and quasi-cleavage flat facets in secondary cracks aligned with the rolling direction. The quasi-cleavage flat facets showed nanovoids at the slip line intersections, which in turn confirmed Hydrogen-Enhanced Localized Plasticity (HELP) as the prominent embrittlement mechanism. Because of the material’s crystallographic texture, a good part of hydrogen was not transported to a direction normal to the applied stress as it would happen for pure diffusion but instead followed the dislocations in the rolling direction. That effect caused that less hydrogen was concentrated in the main crack tip, which inevitably increased the overall energy for fracture.application/pdfengMaterials science and engineering. A, Structural materials : properties, microstructure and processing. Amsterdam. Vol. 803 (Jan. 2021), [Article] 140486, 10 p.Ligas de níquelFragilização por hidrogênioResistência à fraturaNickel-based superalloysHydrogen embrittlementStrain rateToughnessFracture mechanismsHydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloyEstrangeiroinfo:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/openAccessreponame:Repositório Institucional da UFRGSinstname:Universidade Federal do Rio Grande do Sul (UFRGS)instacron:UFRGSTEXT001124258.pdf.txt001124258.pdf.txtExtracted Texttext/plain39510http://www.lume.ufrgs.br/bitstream/10183/220137/2/001124258.pdf.txt48edf6d633e0796e377747e7e6baaba0MD52ORIGINAL001124258.pdfTexto completo (inglês)application/pdf11273607http://www.lume.ufrgs.br/bitstream/10183/220137/1/001124258.pdfd9f21ffa1c142e53af42400d4305b23eMD5110183/2201372021-05-07 04:57:44.730213oai:www.lume.ufrgs.br:10183/220137Repositório de PublicaçõesPUBhttps://lume.ufrgs.br/oai/requestopendoar:2021-05-07T07:57:44Repositório Institucional da UFRGS - Universidade Federal do Rio Grande do Sul (UFRGS)false
dc.title.pt_BR.fl_str_mv Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy
title Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy
spellingShingle Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy
Burille, Airton
Ligas de níquel
Fragilização por hidrogênio
Resistência à fratura
Nickel-based superalloys
Hydrogen embrittlement
Strain rate
Toughness
Fracture mechanisms
title_short Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy
title_full Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy
title_fullStr Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy
title_full_unstemmed Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy
title_sort Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy
author Burille, Airton
author_facet Burille, Airton
Scheid, Adriano
Ferreira, Daniel Correia Freire
Santana, Luciano Meirelles
Kwietniewski, Carlos Eduardo Fortis
author_role author
author2 Scheid, Adriano
Ferreira, Daniel Correia Freire
Santana, Luciano Meirelles
Kwietniewski, Carlos Eduardo Fortis
author2_role author
author
author
author
dc.contributor.author.fl_str_mv Burille, Airton
Scheid, Adriano
Ferreira, Daniel Correia Freire
Santana, Luciano Meirelles
Kwietniewski, Carlos Eduardo Fortis
dc.subject.por.fl_str_mv Ligas de níquel
Fragilização por hidrogênio
Resistência à fratura
topic Ligas de níquel
Fragilização por hidrogênio
Resistência à fratura
Nickel-based superalloys
Hydrogen embrittlement
Strain rate
Toughness
Fracture mechanisms
dc.subject.eng.fl_str_mv Nickel-based superalloys
Hydrogen embrittlement
Strain rate
Toughness
Fracture mechanisms
description This work evaluated the hydrogen embrittlement resistance of the nickel-based UNS N08830 alloy through a hydrogen charging study, slow strain rate (SSR), and fracture toughness tests. The microstructure evaluation showed large-size austenitic grains with no evidence of second phase precipitation, a high fraction of low-angle grain boundaries, and texture of {100} and {111} planes in the rolling direction. From SSR tests results, strain to fracture and reduction of area embrittlement indexes of 25.3 and 42.1% were found, respectively. A modest drop in fracture toughness of approximately 20% was observed. From fractography, it was observed a prevailing mixed micromechanism of fracture comprised of microvoids coalescence and quasi-cleavage flat facets in secondary cracks aligned with the rolling direction. The quasi-cleavage flat facets showed nanovoids at the slip line intersections, which in turn confirmed Hydrogen-Enhanced Localized Plasticity (HELP) as the prominent embrittlement mechanism. Because of the material’s crystallographic texture, a good part of hydrogen was not transported to a direction normal to the applied stress as it would happen for pure diffusion but instead followed the dislocations in the rolling direction. That effect caused that less hydrogen was concentrated in the main crack tip, which inevitably increased the overall energy for fracture.
publishDate 2021
dc.date.accessioned.fl_str_mv 2021-04-21T04:27:09Z
dc.date.issued.fl_str_mv 2021
dc.type.driver.fl_str_mv Estrangeiro
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dc.identifier.issn.pt_BR.fl_str_mv 0921-5093
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url http://hdl.handle.net/10183/220137
dc.language.iso.fl_str_mv eng
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dc.relation.ispartof.pt_BR.fl_str_mv Materials science and engineering. A, Structural materials : properties, microstructure and processing. Amsterdam. Vol. 803 (Jan. 2021), [Article] 140486, 10 p.
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