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dc.contributor.authorASGARPOUR, Monir
dc.contributor.author
 hal.structure.identifier
BAKIR, Farid
134975 Laboratoire de Dynamique des Fluides [DynFluid]
dc.contributor.author
 hal.structure.identifier
KHELLADI, Sofiane
134975 Laboratoire de Dynamique des Fluides [DynFluid]
dc.contributor.author
 hal.structure.identifier
KHAVANDI, Alireza
237012 Electronic research center [Tehran] [ERC ]
dc.contributor.author
 hal.structure.identifier
TCHARKHTCHI, Abbas
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]
dc.date.accessioned2015
dc.date.available2015
dc.date.issued2012
dc.date.submitted2015
dc.identifier.issn0032-3888
dc.identifier.urihttp://hdl.handle.net/10985/9894
dc.description.abstractDuring rotational molding, a loosely packed, low-density powder compact transforms into a fully densified polymer part. This transformation is a consequence of particles sintering. Powder compact density evolution of the polymer powder is measured experimentally. Obtained results show that the powder densification process consists of two stages, and its mechanism during these two stages is not the same. During the first stage, densification occurs by grains coalescence, and air between the grains escape by open pores between particles. These open pores close in time by particles coalescence progress, and remaining air entrapped in polymer melt becomes air bubbles. Surface tension, viscosity, grains size, and temperature are the controlling parameters during first stage. A three-dimensional model is proposed for the densification of polymer powder during first stage. Second stage starts after bubble forming. Diffusion is the controlling phenomena during this stage. A diffusion-based model is used for the second stage of densification. By comparing with the other models, proposed model exhibits several advantages: it is proposed in three-dimensional and takes into account the nature of layer-by-layer powder densification. Model verification by experimental data obtained for densification of two different polymers shows a close agreement between model prediction and experiments.
dc.language.isoen
dc.publisherWiley-Blackwell
dc.rightsPost-print
dc.title3D Model for Powder Compact Densification in Rotational Molding
dc.identifier.doi10.1002/pen.23133
dc.typdocArticle dans une revue avec comité de lecture
dc.localisationCentre de Paris
dc.subject.halSciences de l'ingénieur: Matériaux
dc.subject.halSciences de l'ingénieur: Mécanique
ensam.audienceInternationale
ensam.page2033-2040.
ensam.journalPolymer Engineering and Science
ensam.volume52
hal.identifierhal-01192602
hal.version1
hal.statusaccept
dc.identifier.eissn1548-2634


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