LAPSE:2023.27199
Published Article

LAPSE:2023.27199
Design and Performance Assessment of a Small-Scale Ferrite-PM Flux Reversal Wind Generator
April 4, 2023
Abstract
Currently, there is increasing research interest in harnessing wind energy for power generation by means of non-conventional electrical machines e.g., flux-reversal machines. The flux reversal machine is usually designed using scarce rare−earth permanent magnet material which may be unattractive in terms of machine cost. In this study, an attempt is made to re-design the flux reversal machine with non-rare-earth ferrite permanent magnet for wind energy applications. Because these machines possess high cogging torque, which results in vibration and noise, that are detrimental to the machine performance, especially at low speeds, a novel combined skewed and circumferential rotor pole pairing method is developed. The proposed cogging torque reduction method is implemented in 2-dimensional finite element analysis modeling and comparatively analyzed with other existing stand-alone methods viz., skewing, and rotor pole pairing. The results show that the proposed method led to 94.8% and 71% reduction in the cogging torque and torque ripple compared to the reference generator, respectively. However, the calculated torque density is reduced by 13%. Overall, the electromagnetic performance of the proposed ferrite PM machine exhibits desirable qualities as an alternative design for the direct drive wind generator.
Currently, there is increasing research interest in harnessing wind energy for power generation by means of non-conventional electrical machines e.g., flux-reversal machines. The flux reversal machine is usually designed using scarce rare−earth permanent magnet material which may be unattractive in terms of machine cost. In this study, an attempt is made to re-design the flux reversal machine with non-rare-earth ferrite permanent magnet for wind energy applications. Because these machines possess high cogging torque, which results in vibration and noise, that are detrimental to the machine performance, especially at low speeds, a novel combined skewed and circumferential rotor pole pairing method is developed. The proposed cogging torque reduction method is implemented in 2-dimensional finite element analysis modeling and comparatively analyzed with other existing stand-alone methods viz., skewing, and rotor pole pairing. The results show that the proposed method led to 94.8% and 71% reduction in the cogging torque and torque ripple compared to the reference generator, respectively. However, the calculated torque density is reduced by 13%. Overall, the electromagnetic performance of the proposed ferrite PM machine exhibits desirable qualities as an alternative design for the direct drive wind generator.
Record ID
Keywords
cogging torque, ferrite PM, finite element analysis, flux reversal machine, non-rare earth, wind energy
Subject
Suggested Citation
Manne B, Kiran Kumar M, B. Akuru U. Design and Performance Assessment of a Small-Scale Ferrite-PM Flux Reversal Wind Generator. (2023). LAPSE:2023.27199
Author Affiliations
Manne B: Electrical and Electronic Engineering, Koneru Lakshmaiah Educational Foundation, Guntur 522502, India [ORCID]
Kiran Kumar M: Electrical and Electronic Engineering, Koneru Lakshmaiah Educational Foundation, Guntur 522502, India
B. Akuru U: Department of Electrical Engineering, Tshwane University of Technology, Pretoria 0183, South Africa; Department of Electrical Engineering, University of Nigeria, Nsukka, Enugu State 410001, Nigeria [ORCID]
Kiran Kumar M: Electrical and Electronic Engineering, Koneru Lakshmaiah Educational Foundation, Guntur 522502, India
B. Akuru U: Department of Electrical Engineering, Tshwane University of Technology, Pretoria 0183, South Africa; Department of Electrical Engineering, University of Nigeria, Nsukka, Enugu State 410001, Nigeria [ORCID]
Journal Name
Energies
Volume
13
Issue
21
Article Number
E5565
Year
2020
Publication Date
2020-10-23
ISSN
1996-1073
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Original Submission
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PII: en13215565, Publication Type: Journal Article
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LAPSE:2023.27199
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https://doi.org/10.3390/en13215565
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