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Characterization of strain rate effects in sheet laser forming
Indexado
WoS WOS:000438394600014
Scopus SCOPUS_ID:85048519934
DOI 10.1016/J.CRME.2018.05.001
Año 2018
Tipo artículo de investigación

Citas Totales

Autores Afiliación Chile

Instituciones Chile

% Participación
Internacional

Autores
Afiliación Extranjera

Instituciones
Extranjeras


Abstract



This work presents numerical simulations and experimental validation of sheet laser forming processes using a single-step straight path with different laser beam powers (four levels ranging from 30 W to 120 W) and scanning speeds (four levels ranging from 5 mm/s to 20 mm/s) in graphite-coated AISI 304 stainless steel 0.6-mm-thick sheets. The numerical simulations of these cases are performed via a coupled thermomechanical finite element formulation accounting for large strains, temperature-dependent material properties and convection-radiation phenomena. Firstly, a rate-independent plastic model is used. Although this model adequately predicts the final bending angle for the cases achieving relatively low maximum temperatures, i.e. cases with low laser beam powers and high scanning speeds, it fails in describing the deformation pattern for the cases with higher maximum temperatures, i.e. cases with high laser beam powers and low scanning speeds. Secondly, in order to overcome this drawback, a rate-dependent viscoplastic model including a stress-dependent viscosity law is proposed to simulate the same cases. The final bending angles provided by this model are found to be in good agreement with the experimental measurements for the whole ranges of laser beam power and scanning speed studied in this work. Therefore, the use of this viscoplastic model in the simulation of sheet laser forming allows us to conclude that the strain rate effects, which mainly play a relevant role at high temperatures, can be adequately characterized. (C) 2018 Academie des sciences. Published by Elsevier Masson SAS. All rights reserved.

Revista



Revista ISSN
Comptes Rendus Mecanique 1631-0721

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Disciplinas de Investigación



WOS
Mechanics
Scopus
Sin Disciplinas
SciELO
Sin Disciplinas

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Publicaciones WoS (Ediciones: ISSHP, ISTP, AHCI, SSCI, SCI), Scopus, SciELO Chile.

Colaboración Institucional



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Autores - Afiliación



Ord. Autor Género Institución - País
1 CASTILLO-ESPINOZA, JAVIER IGNACIO Hombre Pontificia Universidad Católica de Chile - Chile
2 CELENTANO, DIEGO JAVIER Hombre Pontificia Universidad Católica de Chile - Chile
3 CRUCHAGA, MARCELA ANDREA Mujer Universidad de Santiago de Chile - Chile
4 GARCIA-HERRERA, CLAUDIO MOISES Hombre Universidad de Santiago de Chile - Chile

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Financiamiento



Fuente
Fondo Nacional de Desarrollo Científico y Tecnológico
Universidad de Santiago de Chile
Consejo Nacional para Investigaciones Científicas y Tecnológicas
National Council for Scientific Research
National Council for Scientific and Technological Research CONICYT (FONDECYT)
Scientific Research Project Management Department of Research, Development and Innovation (DICYT-VRID) at Universidad de Santiago de Chile
Scientific Research Project Management Department of Research, Development and Innovation

Muestra la fuente de financiamiento declarada en la publicación.

Agradecimientos



Agradecimiento
The supports provided by the National Council for Scientific and Technological Research CONICYT (FONDECYT Project No. 1180591) and the Scientific Research Project Management Department of Research, Development and Innovation (DICYT-VRID) at Universidad de Santiago de Chile (Proyecto Fortalecimiento Usach USA1799_GC131612) are gratefully acknowledged.
The supports provided by the National Council for Scientific and Technological Research CONICYT (FONDECYT Project No. 1180591 ) and the Scientific Research Project Management Department of Research, Development and Innovation (DICYT-VRID) at Universidad de Santiago de Chile (Proyecto Fortalecimiento Usach USA1799_GC131612 ) are gratefully acknowledged.

Muestra la fuente de financiamiento declarada en la publicación.