Impact of a Transient and Asymmetrical Distribution of the Electric Arc on the Solidification Conditions of the Ingot in the VAR Process
Abstract
:1. Introduction
2. Experimental Evidence of the Existence of a Time Varying Asymmetrical Arc Distribution
2.1. Experimental Methodology
2.2. Spatio-Temporal Distribution of the Arc Luminosity Centroid
3. Modelling
3.1. Modelling of the Arc Patterns
3.2. 3D Model of the VAR Ingot
- Electric current distribution at any time at the ingot top, current flow within the ingot, electromagnetic forces related to the interaction between the melting current and both the self-induced and external axial magnetic fields.
- Arc power distribution at any time at the ingot top, heat content of the falling drops, convective-diffusive heat transfer within the ingot, dissipation of solidification latent heat, ingot cooling through top surface radiation and water-cooling at the lateral and bottom surfaces.
- Solute content of the falling drops, convective transport of solute elements within the melt pool and mushy zone, evaporation of volatile elements at the pool surface, solute redistribution at the solid–liquid interface (hence solidification-induced segregation).
- Buoyancy caused by temperature and concentration gradients, forced convection due to the electromagnetic forces, turbulence of the flow in the pool, Darcy-like interaction between the solid and liquid within the mushy zone.
- Side wall heat transfer.
4. Simulation Results and Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Delzant, P.-O.; Chapelle, P.; Jardy, A.; Matveichev, A.; Millet, Y. Impact of a Transient and Asymmetrical Distribution of the Electric Arc on the Solidification Conditions of the Ingot in the VAR Process. Metals 2022, 12, 500. https://doi.org/10.3390/met12030500
Delzant P-O, Chapelle P, Jardy A, Matveichev A, Millet Y. Impact of a Transient and Asymmetrical Distribution of the Electric Arc on the Solidification Conditions of the Ingot in the VAR Process. Metals. 2022; 12(3):500. https://doi.org/10.3390/met12030500
Chicago/Turabian StyleDelzant, Pierre-Olivier, Pierre Chapelle, Alain Jardy, Alexey Matveichev, and Yvon Millet. 2022. "Impact of a Transient and Asymmetrical Distribution of the Electric Arc on the Solidification Conditions of the Ingot in the VAR Process" Metals 12, no. 3: 500. https://doi.org/10.3390/met12030500
APA StyleDelzant, P. -O., Chapelle, P., Jardy, A., Matveichev, A., & Millet, Y. (2022). Impact of a Transient and Asymmetrical Distribution of the Electric Arc on the Solidification Conditions of the Ingot in the VAR Process. Metals, 12(3), 500. https://doi.org/10.3390/met12030500