Izenburua
Study of powder densification under hydrostatic loads at high temperatures using finite element methodEgilea
Egilea (beste erakunde batekoa)
Beste instituzio
Centro de Estudios e Investigaciones Técnicas de Gipuzkoa (CEIT)ITP Aero
Tecnun
Bertsioa
Bertsio argitaratua
Eskubideak
© 2020 The AuthorsSarbidea
Sarbide irekiaArgitaratzailearen bertsioa
https://doi.org/10.1016/j.promfg.2020.08.073Non argitaratua
Procedia Manufacturing Vol. 50. Pp. 401-406, 2020Lehenengo orria
401Azken orria
406Argitaratzailea
ElsevierGako-hitzak
Powder compaction
Finite element method
Hydrostatic behaviour
Mesoscopic analysis ... [+]
Finite element method
Hydrostatic behaviour
Mesoscopic analysis ... [+]
Powder compaction
Finite element method
Hydrostatic behaviour
Mesoscopic analysis
Experimental characterization [-]
Finite element method
Hydrostatic behaviour
Mesoscopic analysis
Experimental characterization [-]
Laburpena
Many different constitutive models that describe the behaviour of metal powder during hot isostatic processes are found in literature. A quantitative comparison of these material laws shows a huge dis ... [+]
Many different constitutive models that describe the behaviour of metal powder during hot isostatic processes are found in literature. A quantitative comparison of these material laws shows a huge discrepancy among the different existing models. This reveals the high sensitivity of the mechanical behaviour of porous materials to the shape, arrangement and distribution of particles and pores.
In order to clarify these discrepancies, the compaction behaviour under high temperature hydrostatic loads for a Nickel-based superalloy has been experimentally characterized. In parallel, three different particle/pore configurations have been analysed at a mesoscopic scale by means of FEM using representative volume elements (RVEs) with periodic boundary conditions. The overall macroscopic response of each RVE has been obtained by a homogenization procedure.
The results confirm the high sensitivity of the overall mechanical response to the microscopic arrangement of pores and particles. [-]
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