Development of a complex multicomponent microstructure on commercial carbon-silicon grade steel by governing the phase transformation mechanisms to design novel quenching and partitioning processing

dc.contributor
Universitat Politècnica de Catalunya. Departament de Resistència de Materials i Estructures a l'Enginyeria
dc.contributor.author
Carvalho, Felipe
dc.contributor.author
Centeno, Dany
dc.contributor.author
Tressia, Gustavo
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Ávila Díaz, Julián Arnaldo
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Cezario, Fabiano
dc.contributor.author
Marquez-Rossy, Andrés
dc.contributor.author
Ariza, Edwan
dc.contributor.author
Masoumi, Mohammad
dc.date.issued
2022-04-25
dc.identifier
Carvalho, F. [et al.]. Development of a complex multicomponent microstructure on commercial carbon-silicon grade steel by governing the phase transformation mechanisms to design novel quenching and partitioning processing. "Journal of materials research and technology", 25 Abril 2022, vol. 18, p. 4590-4603.
dc.identifier
2238-7854
dc.identifier
https://hdl.handle.net/2117/367960
dc.identifier
10.1016/j.jmrt.2022.04.066
dc.description.abstract
The constant demand for increasing the strength without ductility loss and production cost encourages industrial and academic societies to propose novel heat treatment processing of commercial steel grades. To improve the mechanical properties of commercial spring steel, a novel quenching and partitioning (Q&P) processing was designed to deliver a complex and desirable nanostructured multicomponent microstructure by controlling the carbon partitioning kinetics. Furthermore, the partitioning of excessive carbon from saturated martensite into untransformed austenite enhances the formation of transition carbides during tempering between 130 and 280 °C. Electron microscopy confirmed a complex multicomponent structure containing BCC tempered lath combined with retained austenite and nanocarbides particles within the tempered laths. Such multicomponent lath-type structure obtained by designed Q&P heat treatment on commercial carbon-silicon spring steel revealed localized mechanical resistance varying from 4.92 GPa for the QP-220-375-400 to 8.22 GPa for the QP-220-325-400 samples determined by nanoindentation test. Moreover, the tensile test showed high ultimate tensile strength and a yield strength up to 1400 MPa and 975 MPa, respectively, in the QP-220-375-400 sample due to a set of complex multicomponent lath-type refined structures designed by Q&P coupled with bainitic transformation, with good strain to fracture (~0.12%).
dc.description.abstract
Peer Reviewed
dc.description.abstract
Postprint (published version)
dc.format
14 p.
dc.format
application/pdf
dc.language
eng
dc.publisher
Elsevier
dc.relation
https://www.sciencedirect.com/science/article/pii/S223878542200566X
dc.rights
@ 2022. The authors
dc.rights
http://creativecommons.org/licenses/by/4.0/
dc.rights
Open Access
dc.rights
Attribution 4.0 International
dc.subject
Àrees temàtiques de la UPC::Enginyeria dels materials
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Nanoparticles
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Crystal lattices
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Nanoparticles
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Lattice distortion
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Boundaries
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Kernel average misorientation
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Crystal orientation
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Nanopartícules
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Reticles cristal·lins
dc.title
Development of a complex multicomponent microstructure on commercial carbon-silicon grade steel by governing the phase transformation mechanisms to design novel quenching and partitioning processing
dc.type
Article


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