LAPSE:2023.30082
Published Article

LAPSE:2023.30082
Transient Thermal Analysis of NH000 gG 100A Fuse Link Employing Finite Element Method
April 14, 2023
Abstract
In this paper, a detailed three-dimensional, transient, finite element method of fuse link NH000 gG 100 A is proposed. The thermal properties during the operation of the fuses under nominal (100 A) and custom conditions (110 and 120 A) are the main focus of the analyses that were conducted. The work concerns both the outside elements of the fuse link (ceramic body) and the elements inside (current circuit). Both the distribution of the electric current and its impact on the temperature of the construction parts of the fuses during their operating mode have been described. Temperature distribution, power losses and energy dissipation were measured using a numerical model. In order to verify and validate the model, two independent teams of scientists executed experimental research, during which the temperature was measured on different parts of the device involving the rated current. Finally, the two sets of results were put together and compared with those obtained from the simulation tests. A possible significant correlation between the results of the empirical tests and the simulation work was highlighted.
In this paper, a detailed three-dimensional, transient, finite element method of fuse link NH000 gG 100 A is proposed. The thermal properties during the operation of the fuses under nominal (100 A) and custom conditions (110 and 120 A) are the main focus of the analyses that were conducted. The work concerns both the outside elements of the fuse link (ceramic body) and the elements inside (current circuit). Both the distribution of the electric current and its impact on the temperature of the construction parts of the fuses during their operating mode have been described. Temperature distribution, power losses and energy dissipation were measured using a numerical model. In order to verify and validate the model, two independent teams of scientists executed experimental research, during which the temperature was measured on different parts of the device involving the rated current. Finally, the two sets of results were put together and compared with those obtained from the simulation tests. A possible significant correlation between the results of the empirical tests and the simulation work was highlighted.
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Keywords
ANSYS coupled analysis, design methods, FEM, fuse links, low voltage fuses, modeling and simulation, transient thermal analysis
Subject
Suggested Citation
Szulborski M, Łapczyński S, Kolimas Ł, Kozarek Ł, Rasolomampionona DD, Żelaziński T, Smolarczyk A. Transient Thermal Analysis of NH000 gG 100A Fuse Link Employing Finite Element Method. (2023). LAPSE:2023.30082
Author Affiliations
Szulborski M: Faculty of Electrical Engineering, Electrical Power Engineering Institute, Warsaw University of Technology, 00-662 Warsaw, Poland [ORCID]
Łapczyński S: Faculty of Electrical Engineering, Electrical Power Engineering Institute, Warsaw University of Technology, 00-662 Warsaw, Poland
Kolimas Ł: Faculty of Electrical Engineering, Electrical Power Engineering Institute, Warsaw University of Technology, 00-662 Warsaw, Poland [ORCID]
Kozarek Ł: ILF Consulting Engineers Polska Sp. z o.o., 02-823 Warsaw, Poland [ORCID]
Rasolomampionona DD: Faculty of Electrical Engineering, Electrical Power Engineering Institute, Warsaw University of Technology, 00-662 Warsaw, Poland [ORCID]
Żelaziński T: Institute of Mechanical Engineering, Warsaw University of Life Sciences, 02-787 Warsaw, Poland [ORCID]
Smolarczyk A: Faculty of Electrical Engineering, Electrical Power Engineering Institute, Warsaw University of Technology, 00-662 Warsaw, Poland
Łapczyński S: Faculty of Electrical Engineering, Electrical Power Engineering Institute, Warsaw University of Technology, 00-662 Warsaw, Poland
Kolimas Ł: Faculty of Electrical Engineering, Electrical Power Engineering Institute, Warsaw University of Technology, 00-662 Warsaw, Poland [ORCID]
Kozarek Ł: ILF Consulting Engineers Polska Sp. z o.o., 02-823 Warsaw, Poland [ORCID]
Rasolomampionona DD: Faculty of Electrical Engineering, Electrical Power Engineering Institute, Warsaw University of Technology, 00-662 Warsaw, Poland [ORCID]
Żelaziński T: Institute of Mechanical Engineering, Warsaw University of Life Sciences, 02-787 Warsaw, Poland [ORCID]
Smolarczyk A: Faculty of Electrical Engineering, Electrical Power Engineering Institute, Warsaw University of Technology, 00-662 Warsaw, Poland
Journal Name
Energies
Volume
14
Issue
5
First Page
1421
Year
2021
Publication Date
2021-03-04
ISSN
1996-1073
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PII: en14051421, Publication Type: Journal Article
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LAPSE:2023.30082
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https://doi.org/10.3390/en14051421
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