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A Simulation Model for the Inductor of Electromagnetic Levitation Melting and Its Validation

This article presents a numerical model of electromagnetic levitation melting and its experimental validation. Levitation melting uses the phenomenon of magnetic induction to float a melted, usually metallic, conductor in an electromagnetic field. With the appropriate configuration of the coil (the...

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Autores principales: Nycz, Błażej, Przyłucki, Roman, Maliński, Łukasz, Golak, Sławomir
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10342571/
https://www.ncbi.nlm.nih.gov/pubmed/37444947
http://dx.doi.org/10.3390/ma16134634
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author Nycz, Błażej
Przyłucki, Roman
Maliński, Łukasz
Golak, Sławomir
author_facet Nycz, Błażej
Przyłucki, Roman
Maliński, Łukasz
Golak, Sławomir
author_sort Nycz, Błażej
collection PubMed
description This article presents a numerical model of electromagnetic levitation melting and its experimental validation. Levitation melting uses the phenomenon of magnetic induction to float a melted, usually metallic, conductor in an electromagnetic field. With the appropriate configuration of the coil (the source of the alternating magnetic field), the eddy currents induced in the molten batch interact with the coil magnetic field, which causes the melted metal to float without direct contact with any element of the heating system. Such a contactless process is very beneficial for melting very reactive metals (e.g., titanium) or metals with a high melting point (e.g., tungsten). The main disadvantage of levitation melting is the low efficiency of the process. The goal of the authors is to develop, by means of a numerical simulation and optimization tools, a system for levitation melting with acceptable efficiency. To achieve this, it is necessary to develop a reliable and representative computational model. The proposed model includes an analysis of the electromagnetic field, with innovative modeling of the convective heat transport. Experimental validation of the model was performed using aluminum alloy, due to the lack of the need to use a protective atmosphere and the ease of measurements. The measurements included electrical values, the melted batch positions during levitation, the melting time, and the temperature distribution in its area. The verification showed that the compliance between the computational model and the simulation for the position of the batch was accurate to 2 mm ([Formula: see text] %), and the consistency of the batch melting time was accurate to 5 s ([Formula: see text] %). The studies confirmed the good representativeness of the developed numerical model, which makes it a useful tool for the future optimization of the levitation melting system.
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spelling pubmed-103425712023-07-14 A Simulation Model for the Inductor of Electromagnetic Levitation Melting and Its Validation Nycz, Błażej Przyłucki, Roman Maliński, Łukasz Golak, Sławomir Materials (Basel) Article This article presents a numerical model of electromagnetic levitation melting and its experimental validation. Levitation melting uses the phenomenon of magnetic induction to float a melted, usually metallic, conductor in an electromagnetic field. With the appropriate configuration of the coil (the source of the alternating magnetic field), the eddy currents induced in the molten batch interact with the coil magnetic field, which causes the melted metal to float without direct contact with any element of the heating system. Such a contactless process is very beneficial for melting very reactive metals (e.g., titanium) or metals with a high melting point (e.g., tungsten). The main disadvantage of levitation melting is the low efficiency of the process. The goal of the authors is to develop, by means of a numerical simulation and optimization tools, a system for levitation melting with acceptable efficiency. To achieve this, it is necessary to develop a reliable and representative computational model. The proposed model includes an analysis of the electromagnetic field, with innovative modeling of the convective heat transport. Experimental validation of the model was performed using aluminum alloy, due to the lack of the need to use a protective atmosphere and the ease of measurements. The measurements included electrical values, the melted batch positions during levitation, the melting time, and the temperature distribution in its area. The verification showed that the compliance between the computational model and the simulation for the position of the batch was accurate to 2 mm ([Formula: see text] %), and the consistency of the batch melting time was accurate to 5 s ([Formula: see text] %). The studies confirmed the good representativeness of the developed numerical model, which makes it a useful tool for the future optimization of the levitation melting system. MDPI 2023-06-27 /pmc/articles/PMC10342571/ /pubmed/37444947 http://dx.doi.org/10.3390/ma16134634 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Nycz, Błażej
Przyłucki, Roman
Maliński, Łukasz
Golak, Sławomir
A Simulation Model for the Inductor of Electromagnetic Levitation Melting and Its Validation
title A Simulation Model for the Inductor of Electromagnetic Levitation Melting and Its Validation
title_full A Simulation Model for the Inductor of Electromagnetic Levitation Melting and Its Validation
title_fullStr A Simulation Model for the Inductor of Electromagnetic Levitation Melting and Its Validation
title_full_unstemmed A Simulation Model for the Inductor of Electromagnetic Levitation Melting and Its Validation
title_short A Simulation Model for the Inductor of Electromagnetic Levitation Melting and Its Validation
title_sort simulation model for the inductor of electromagnetic levitation melting and its validation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10342571/
https://www.ncbi.nlm.nih.gov/pubmed/37444947
http://dx.doi.org/10.3390/ma16134634
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