A Solidification Model for Atomization
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概要
- 論文の詳細を見る
A microsegregation solidification model has been extended for an individual droplet falling through a stagnant gas during the atomization process. Assuming a uniform temperature within the droplet, the model takes into account nucleation undercooling and equiaxed growth of the dendritic and eutectic microstructures until complete solidification.1) It predicts the temperature evolution and the chemical segregation within the droplet in terms of the percent of the dendritic and eutectic microstructures. Extensive experiments have been performed on Al–Cu droplets using the impulse atomization technique. The distribution of phases, cell spacing and segregation have been quantified earlier.2–4) It has been reported that the amount of eutectic in the droplets falls below the equilibrium prediction as the alloy composition increases. Successful comparison between the model results and the experiments leads to the conclusion that eutectic undercooling and eutectic recalescence play a very important role in the final percent of eutectic in the droplets.
- 社団法人 日本鉄鋼協会の論文
- 2009-07-15
著者
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Hartmann Helena
Institut Fur Materialphysik Im Weltraum Deutsches Zentrum Fur Luft- Und Raumfahrt (dlr) Koln
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PRASAD Arvind
Department of Chemical and Materials Engineering, University of Alberta
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MOSBAH Salem
MINES ParisTech, Centre de Mise en Forme des Materiaux
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HENEIN Hani
Department of Chemical and Materials Engineering, University of Alberta
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GANDIN Charles-Andre
MINES ParisTech, Centre de Mise en Forme des Materiaux
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Mosbah Salem
Mines Paristech Centre De Mise En Forme Des Materiaux
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Prasad Arvind
Department Of Chemical And Materials Engineering University Of Alberta
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Gandin Charles-andre
Mines Paristech Centre De Mise En Forme Des Materiaux
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Gandin Charles-André
MINES ParisTech & CNRS
関連論文
- A Solidification Model for Atomization
- Non-Equilibrium Solidification, Modeling for Microstructure Engineering of Industrial Alloys (NEQUISOL)
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