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Erschienen in: Metallurgical and Materials Transactions B 3/2009

01.06.2009

The Role of Side Arcing in the Global Energy Partition during Vacuum Arc Remelting of INCONEL 718

verfasst von: D. M. Shevchenko, R. M. Ward

Erschienen in: Metallurgical and Materials Transactions B | Ausgabe 3/2009

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Abstract

The energy flows during vacuum arc remelting (VAR) of a 20-in.-diameter ingot of INCONEL 718 have been investigated experimentally, numerically, and theoretically, and the results are compared and discussed. The temperatures at a number of points on the outer surface of a VAR crucible were measured during a melt. A forward heat-flow model was constructed and the (initially unknown) interior heat flux distribution refined iteratively until the predicted crucible temperatures matched the measurements. The model included radial and vertical heat flow within the crucible and the development of a heated cooling water layer near the outer surface of the crucible. Significantly, it is shown that the temperature difference between the crucible outer surface and the bulk cooling water was not a linear function of the heat flux at the crucible inner surface. It is shown that results from the literature of plasma physics can be used to place bounds upon the partition of energy during VAR. These bounds are combined with the numerically-inferred power distribution within the crucible to estimate the position of the ingot top during the experiment and, hence, the overall energy partition. Side-arcing from the electrode to the crucible is shown to be predicted to transfer more energy to the crucible than has previously been expected. Time variation in the measured crucible outer surface temperature was also investigated as a means to estimate the ingot top position, and the results are compared with those from numerical modeling and plasma physics arguments. It is shown that the two methods are in fairly good agreement, but that they are in contrast with some aspects of results reported previously.

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Fußnoten
1
INCONEL is a trademark of the Special Metals family of companies, Huntington, WV.
 
2
At the end of melting, the ingot top will be around 1300 °C (from the liquidus and solidus of alloy 718), and numerical studies of VAR melting have predicted a bottom temperature of around 400 °C.[11]
 
3
It should be noted that a different water channel and higher flow velocity might lead to more efficient mixing of the thermal boundary layer, leading to a more linear relationship between crucible surface temperature and local heat flux. It could also be argued that a reduced heat-transfer coefficient at B would give the same crucible outer surface temperature there as at A but with a lower power input. However, it is difficult to find a mechanism for reducing the heat-transfer coefficient at B in this way, apart from film boiling, which has already been shown to be impossible under the experimental conditions in this trial.
 
4
It is also possible that errors in the choice of simulation algorithm or boundary conditions are involved, but the total simulated power input matches the real one quite well, which supports the simulation results.
 
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Metadaten
Titel
The Role of Side Arcing in the Global Energy Partition during Vacuum Arc Remelting of INCONEL 718
verfasst von
D. M. Shevchenko
R. M. Ward
Publikationsdatum
01.06.2009
Verlag
Springer US
Erschienen in
Metallurgical and Materials Transactions B / Ausgabe 3/2009
Print ISSN: 1073-5615
Elektronische ISSN: 1543-1916
DOI
https://doi.org/10.1007/s11663-009-9230-6

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