Effect of autogenous GTAW on the reciprocating sliding wear behavior of a carbon martensitic steel
dc.contributor.author | Paula, Thalita Cristina de | pt_BR |
dc.contributor.author | Mazzaferro, Cintia Cristiane Petry | pt_BR |
dc.contributor.author | Giarollo, Daniela Fátima | pt_BR |
dc.contributor.author | Hidalgo, Gelsa Edith Navarro | pt_BR |
dc.contributor.author | Basso, Breno Luvison | pt_BR |
dc.date.accessioned | 2021-09-24T04:22:08Z | pt_BR |
dc.date.issued | 2021 | pt_BR |
dc.identifier.issn | 1806-2563 | pt_BR |
dc.identifier.uri | http://hdl.handle.net/10183/230163 | pt_BR |
dc.description.abstract | Martensitic steels have been successfully employed in resource-based industries where components must endure aggressive conditions. In industrial practice, many parts of these components are joined by welding techniques. The aim of this work was to understand the influence of welding on the wear resistance of quenched and tempered carbon martensitic steel subjected to dry linear reciprocating sliding micro-wear tests. Weld-joints were produced using autogenous Gas Tungsten Arc Welding process (GTAW). Micro-wear tests were performed at base metal (BM), weld metal (WM), coarse grained heat affected zone (CG-HAZ) and lowest hardness region of heat affected zone (LHR-HAZ). LHR-HAZ was softened during welding process so plastic deformation was facilitated, and consequently adhesion, material displacement and micro-ploughing. WM and CG-HAZ presented a similar martensitic structure, which explain the similarities found on wear behavior. These regions presented the lowest worn volume average values (w). It was interesting to note that despite its highestmicrohardness value, the highest wwas observed for BM. For some BM samples, debris had a key role promoting material loss by micro-cutting which causes great extent of material removal compared to other micro-wear mechanisms as micro-ploughing and adhesion. Due to debris action BM also presented a great dispersion in wresults. The results suggest that material loss of welded joint and BM was strongly controlled by micro-wear mechanisms. | pt_BR |
dc.format.mimetype | application/pdf | pt_BR |
dc.language.iso | eng | pt_BR |
dc.relation.ispartof | Acta scientiarum : technology. Maringá. vol. 43 (2021), e50488, 13 p. | pt_BR |
dc.rights | Open Access | en |
dc.subject | Aço inoxidável martensítico | pt_BR |
dc.subject | Micro-wear | en |
dc.subject | Ball-on-flat | en |
dc.subject | Soldagem TIG | pt_BR |
dc.subject | Abrasion | en |
dc.subject | Resistência ao desgaste | pt_BR |
dc.subject | Martensite | en |
dc.subject | HAZ-softening | en |
dc.title | Effect of autogenous GTAW on the reciprocating sliding wear behavior of a carbon martensitic steel | pt_BR |
dc.type | Artigo de periódico | pt_BR |
dc.identifier.nrb | 001129782 | pt_BR |
dc.type.origin | Nacional | pt_BR |
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