Sequential Parts Analysis Using Local Optimization Method for Hybrid Excitation Flux Switching Generator

The Hybrid Excitation Flux Switching Generator (HEFSG) has gained significant popularity in recent times owing to its relatively simple remarkably efficient topology. To optimize the performance of the generator, recent advancements and emerging patterns in mathematical modeling and software simulat...

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Main Authors: Nur Afiqah Mostaman, Erwan Sulaiman, Mahyuzie Jenal
Format: Article
Language:English
Published: OICC Press 2024-04-01
Series:Majlesi Journal of Electrical Engineering
Subjects:
Online Access:https://oiccpress.com/mjee/article/view/5056
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author Nur Afiqah Mostaman
Erwan Sulaiman
Mahyuzie Jenal
author_facet Nur Afiqah Mostaman
Erwan Sulaiman
Mahyuzie Jenal
author_sort Nur Afiqah Mostaman
collection DOAJ
description The Hybrid Excitation Flux Switching Generator (HEFSG) has gained significant popularity in recent times owing to its relatively simple remarkably efficient topology. To optimize the performance of the generator, recent advancements and emerging patterns in mathematical modeling and software simulation, along with the utilization of optimization techniques, have facilitated the development of a novel methodology for electrical machine design. This study investigates the configuration and optimization of a Hybrid Excitation Flux Switching Generator, focusing on the rotor, armature coil, and field excitation. The optimization process involves multiple sequences for each component, employing the Local Optimization Method as an iterative approach to determine the optimal sequence that yields the highest output efficiency. Through the investigation of six rotor sequences, two armature coil sequences, and two field excitation coil sequences, a detailed optimization process was conducted. Consequently, the final output voltage of the HEFSG gains a 1.10% increment of voltage compared to the initial outcomes. Several sequences have influenced the output voltage performance of the generator during the optimization process. Therefore, modifications to the design of the arrangement contribute to the expansion of the operational range of the generator.
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institution Kabale University
issn 2345-377X
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publishDate 2024-04-01
publisher OICC Press
record_format Article
series Majlesi Journal of Electrical Engineering
spelling doaj-art-16559bc495f144e8bb68400e2c1436152025-08-20T03:28:21ZengOICC PressMajlesi Journal of Electrical Engineering2345-377X2345-37962024-04-0118110.30486/mjee.2024.1998536.1290Sequential Parts Analysis Using Local Optimization Method for Hybrid Excitation Flux Switching GeneratorNur Afiqah MostamanErwan SulaimanMahyuzie JenalThe Hybrid Excitation Flux Switching Generator (HEFSG) has gained significant popularity in recent times owing to its relatively simple remarkably efficient topology. To optimize the performance of the generator, recent advancements and emerging patterns in mathematical modeling and software simulation, along with the utilization of optimization techniques, have facilitated the development of a novel methodology for electrical machine design. This study investigates the configuration and optimization of a Hybrid Excitation Flux Switching Generator, focusing on the rotor, armature coil, and field excitation. The optimization process involves multiple sequences for each component, employing the Local Optimization Method as an iterative approach to determine the optimal sequence that yields the highest output efficiency. Through the investigation of six rotor sequences, two armature coil sequences, and two field excitation coil sequences, a detailed optimization process was conducted. Consequently, the final output voltage of the HEFSG gains a 1.10% increment of voltage compared to the initial outcomes. Several sequences have influenced the output voltage performance of the generator during the optimization process. Therefore, modifications to the design of the arrangement contribute to the expansion of the operational range of the generator. https://oiccpress.com/mjee/article/view/5056Armature coilField Excitation Coil and LOMFSGGeneratorHEFSGOptimization
spellingShingle Nur Afiqah Mostaman
Erwan Sulaiman
Mahyuzie Jenal
Sequential Parts Analysis Using Local Optimization Method for Hybrid Excitation Flux Switching Generator
Majlesi Journal of Electrical Engineering
Armature coil
Field Excitation Coil and LOM
FSG
Generator
HEFSG
Optimization
title Sequential Parts Analysis Using Local Optimization Method for Hybrid Excitation Flux Switching Generator
title_full Sequential Parts Analysis Using Local Optimization Method for Hybrid Excitation Flux Switching Generator
title_fullStr Sequential Parts Analysis Using Local Optimization Method for Hybrid Excitation Flux Switching Generator
title_full_unstemmed Sequential Parts Analysis Using Local Optimization Method for Hybrid Excitation Flux Switching Generator
title_short Sequential Parts Analysis Using Local Optimization Method for Hybrid Excitation Flux Switching Generator
title_sort sequential parts analysis using local optimization method for hybrid excitation flux switching generator
topic Armature coil
Field Excitation Coil and LOM
FSG
Generator
HEFSG
Optimization
url https://oiccpress.com/mjee/article/view/5056
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AT erwansulaiman sequentialpartsanalysisusinglocaloptimizationmethodforhybridexcitationfluxswitchinggenerator
AT mahyuziejenal sequentialpartsanalysisusinglocaloptimizationmethodforhybridexcitationfluxswitchinggenerator