LAPSE:2023.27182
Published Article

LAPSE:2023.27182
An Overview of MnAl Permanent Magnets with a Study on Their Potential in Electrical Machines
April 4, 2023
Abstract
In this paper, hard magnetic materials for future use in electrical machines are discussed. Commercialized permanent magnets used today are presented and new magnets are reviewed shortly. Specifically, the magnetic MnAl compound is investigated as a potential material for future generator designs. Experimental results of synthesized MnAl, carbon-doped MnAl and calculated values for MnAl are compared regarding their energy products. The results show that the experimental energy products are far from the theoretically calculated values with ideal conditions due to microstructure-related reasons. The performance of MnAl in a future permanent magnet (PM) generator is investigated with COMSOL, assuming ideal conditions. Simplifications, such as using an ideal hysteresis loop based on measured and calculated saturation magnetization values were done for the COMSOL simulation. The results are compared to those for a ferrite magnet and an NdFeB magnet. For an ideal MnAl hysteresis loop, it would be possible to replace ferrite with MnAl, with a reduced weight compared to ferrite. In conclusion, future work for simulations with assumptions and results closer to reality is suggested.
In this paper, hard magnetic materials for future use in electrical machines are discussed. Commercialized permanent magnets used today are presented and new magnets are reviewed shortly. Specifically, the magnetic MnAl compound is investigated as a potential material for future generator designs. Experimental results of synthesized MnAl, carbon-doped MnAl and calculated values for MnAl are compared regarding their energy products. The results show that the experimental energy products are far from the theoretically calculated values with ideal conditions due to microstructure-related reasons. The performance of MnAl in a future permanent magnet (PM) generator is investigated with COMSOL, assuming ideal conditions. Simplifications, such as using an ideal hysteresis loop based on measured and calculated saturation magnetization values were done for the COMSOL simulation. The results are compared to those for a ferrite magnet and an NdFeB magnet. For an ideal MnAl hysteresis loop, it would be possible to replace ferrite with MnAl, with a reduced weight compared to ferrite. In conclusion, future work for simulations with assumptions and results closer to reality is suggested.
Record ID
Keywords
COMSOL, electrical machines, permanent magnets, rare earth-free, Renewable and Sustainable Energy
Subject
Suggested Citation
Kontos S, Ibrayeva A, Leijon J, Mörée G, Frost AE, Schönström L, Gunnarsson K, Svedlindh P, Leijon M, Eriksson S. An Overview of MnAl Permanent Magnets with a Study on Their Potential in Electrical Machines. (2023). LAPSE:2023.27182
Author Affiliations
Kontos S: Division of Solid State Physics, Uppsala University, 752 36 Uppsala, Sweden
Ibrayeva A: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden
Leijon J: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden [ORCID]
Mörée G: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden
Frost AE: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden
Schönström L: Division of Physics and Astronomy, Uppsala University, 752 36 Uppsala, Sweden
Gunnarsson K: Division of Solid State Physics, Uppsala University, 752 36 Uppsala, Sweden
Svedlindh P: Division of Solid State Physics, Uppsala University, 752 36 Uppsala, Sweden
Leijon M: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden; Division of Electrical Machines and Power Electronics, Chalmers University of Technology, 412 96 Göteborg, Sweden
Eriksson S: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden [ORCID]
Ibrayeva A: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden
Leijon J: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden [ORCID]
Mörée G: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden
Frost AE: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden
Schönström L: Division of Physics and Astronomy, Uppsala University, 752 36 Uppsala, Sweden
Gunnarsson K: Division of Solid State Physics, Uppsala University, 752 36 Uppsala, Sweden
Svedlindh P: Division of Solid State Physics, Uppsala University, 752 36 Uppsala, Sweden
Leijon M: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden; Division of Electrical Machines and Power Electronics, Chalmers University of Technology, 412 96 Göteborg, Sweden
Eriksson S: Division of Electricity, Department of Engineering Sciences, Uppsala University, 752 36 Uppsala, Sweden [ORCID]
Journal Name
Energies
Volume
13
Issue
21
Article Number
E5549
Year
2020
Publication Date
2020-10-23
ISSN
1996-1073
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Original Submission
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PII: en13215549, Publication Type: Journal Article
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LAPSE:2023.27182
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https://doi.org/10.3390/en13215549
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