Investigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processing

Detalhes bibliográficos
Autor(a) principal: Amavisca, Carla Volff
Data de Publicação: 2020
Outros Autores: Fonseca, Gustavo Cordenonsi da, Diehl, Igor Luís, Buzzatti, Diogo Trento, Clarke, Thomas Gabriel Rosauro
Tipo de documento: Artigo
Idioma: eng
Título da fonte: Repositório Institucional da UFRGS
Texto Completo: http://hdl.handle.net/10183/222258
Resumo: The distribution of residual stresses (RS) in repairs generated by Friction Hydro-Pillar Processing (FHPP) in AISI H13 was investigated. Three axial force levels, with consequent different deposition rates, were applied to replicate possible repaired conditions. The contour (CM) and X-ray diffraction (XRD) methods were employed for RS analysis in samples that were also evaluated through metallography, microhardness analysis, micro-tensile and Charpy testing. CM produced 2D maps of the RS in the joints, showing symmetrical distributions around the welded rod for all welded conditions. Other common features for all conditions were the maximum level of compressive RS, which was found in the TMAZ of the rod, and the maximum tensile residual stress, which was found near the HAZ of the base block. There was good agreement between the RS measurement techniques. Mechanical tests show similar tensile resistance for all conditions and an apparent increase in toughness at higher force levels.
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spelling Amavisca, Carla VolffFonseca, Gustavo Cordenonsi daDiehl, Igor LuísBuzzatti, Diogo TrentoClarke, Thomas Gabriel Rosauro2021-06-16T04:36:47Z20201743-2936http://hdl.handle.net/10183/222258001126005The distribution of residual stresses (RS) in repairs generated by Friction Hydro-Pillar Processing (FHPP) in AISI H13 was investigated. Three axial force levels, with consequent different deposition rates, were applied to replicate possible repaired conditions. The contour (CM) and X-ray diffraction (XRD) methods were employed for RS analysis in samples that were also evaluated through metallography, microhardness analysis, micro-tensile and Charpy testing. CM produced 2D maps of the RS in the joints, showing symmetrical distributions around the welded rod for all welded conditions. Other common features for all conditions were the maximum level of compressive RS, which was found in the TMAZ of the rod, and the maximum tensile residual stress, which was found near the HAZ of the base block. There was good agreement between the RS measurement techniques. Mechanical tests show similar tensile resistance for all conditions and an apparent increase in toughness at higher force levels.application/pdfengScience and technology of welding and joining [recurso eletrônico]. Abingdon. vol. 25, no. 6 (2020), p. 503-510Soldagem por fricçãoTensão residualAço-ferramentaFriction hydro-pillar processingContour methodX-ray diffractionResidual stressRepairing of AISI H13 tool steelInvestigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processingEstrangeiroinfo: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:UFRGSTEXT001126005.pdf.txt001126005.pdf.txtExtracted Texttext/plain27574http://www.lume.ufrgs.br/bitstream/10183/222258/2/001126005.pdf.txt4cfbb403201e3d263bac87c42b007203MD52ORIGINAL001126005.pdfTexto completo (inglês)application/pdf3474251http://www.lume.ufrgs.br/bitstream/10183/222258/1/001126005.pdffd9c64c2c5499c03b2f144c235b5fec7MD5110183/2222582021-06-26 04:41:57.790334oai:www.lume.ufrgs.br:10183/222258Repositório de PublicaçõesPUBhttps://lume.ufrgs.br/oai/requestopendoar:2021-06-26T07:41:57Repositório Institucional da UFRGS - Universidade Federal do Rio Grande do Sul (UFRGS)false
dc.title.pt_BR.fl_str_mv Investigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processing
title Investigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processing
spellingShingle Investigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processing
Amavisca, Carla Volff
Soldagem por fricção
Tensão residual
Aço-ferramenta
Friction hydro-pillar processing
Contour method
X-ray diffraction
Residual stress
Repairing of AISI H13 tool steel
title_short Investigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processing
title_full Investigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processing
title_fullStr Investigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processing
title_full_unstemmed Investigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processing
title_sort Investigation of the residual stress distribution in repairs in H13 steel by friction hydro pillar processing
author Amavisca, Carla Volff
author_facet Amavisca, Carla Volff
Fonseca, Gustavo Cordenonsi da
Diehl, Igor Luís
Buzzatti, Diogo Trento
Clarke, Thomas Gabriel Rosauro
author_role author
author2 Fonseca, Gustavo Cordenonsi da
Diehl, Igor Luís
Buzzatti, Diogo Trento
Clarke, Thomas Gabriel Rosauro
author2_role author
author
author
author
dc.contributor.author.fl_str_mv Amavisca, Carla Volff
Fonseca, Gustavo Cordenonsi da
Diehl, Igor Luís
Buzzatti, Diogo Trento
Clarke, Thomas Gabriel Rosauro
dc.subject.por.fl_str_mv Soldagem por fricção
Tensão residual
Aço-ferramenta
topic Soldagem por fricção
Tensão residual
Aço-ferramenta
Friction hydro-pillar processing
Contour method
X-ray diffraction
Residual stress
Repairing of AISI H13 tool steel
dc.subject.eng.fl_str_mv Friction hydro-pillar processing
Contour method
X-ray diffraction
Residual stress
Repairing of AISI H13 tool steel
description The distribution of residual stresses (RS) in repairs generated by Friction Hydro-Pillar Processing (FHPP) in AISI H13 was investigated. Three axial force levels, with consequent different deposition rates, were applied to replicate possible repaired conditions. The contour (CM) and X-ray diffraction (XRD) methods were employed for RS analysis in samples that were also evaluated through metallography, microhardness analysis, micro-tensile and Charpy testing. CM produced 2D maps of the RS in the joints, showing symmetrical distributions around the welded rod for all welded conditions. Other common features for all conditions were the maximum level of compressive RS, which was found in the TMAZ of the rod, and the maximum tensile residual stress, which was found near the HAZ of the base block. There was good agreement between the RS measurement techniques. Mechanical tests show similar tensile resistance for all conditions and an apparent increase in toughness at higher force levels.
publishDate 2020
dc.date.issued.fl_str_mv 2020
dc.date.accessioned.fl_str_mv 2021-06-16T04:36:47Z
dc.type.driver.fl_str_mv Estrangeiro
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dc.identifier.uri.fl_str_mv http://hdl.handle.net/10183/222258
dc.identifier.issn.pt_BR.fl_str_mv 1743-2936
dc.identifier.nrb.pt_BR.fl_str_mv 001126005
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dc.language.iso.fl_str_mv eng
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dc.relation.ispartof.pt_BR.fl_str_mv Science and technology of welding and joining [recurso eletrônico]. Abingdon. vol. 25, no. 6 (2020), p. 503-510
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