Multi-objective optimization of auxiliary wireless power supply system for maglev trains

During the operation of maglev trains approaching stations, the electric energy generated by the linear generators propels the trains but is insufficient to meet the power demands of onboard equipment. Traditional contact power supply methods have shown deficiencies in various aspects, such as high...

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Main Authors: CHENG Long, DONG Kan, WANG Shuo
Format: Article
Language:zho
Published: Editorial Department of Electric Drive for Locomotives 2025-01-01
Series:机车电传动
Subjects:
Online Access:http://edl.csrzic.com/thesisDetails#10.13890/j.issn.1000-128X.2025.01.019
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author CHENG Long
DONG Kan
WANG Shuo
author_facet CHENG Long
DONG Kan
WANG Shuo
author_sort CHENG Long
collection DOAJ
description During the operation of maglev trains approaching stations, the electric energy generated by the linear generators propels the trains but is insufficient to meet the power demands of onboard equipment. Traditional contact power supply methods have shown deficiencies in various aspects, such as high installation and maintenance costs, as well as the safety risks associated with exposed live conductors. In contrast, wireless power transfer (WPT) technology eliminates the need for physical cable connections, allowing maglev trains to operate without mechanical contact and enhancing the safety, economic efficiency, and environmental adaptability of their auxiliary power supply system. This paper focuses on the optimized design for the magnetic coupling mechanism and resonant compensation circuit, addressing specific requirements of auxiliary WPT systems in maglev train applications including high power demands and efficiency requirements. A finite element model of a magnetic coupling mechanism with a single-transmitter multiple-receiver (STMR) configuration was established. The operational characteristics of three resonant compensation topologies (S/S, LCC/LCC, LCC/S) for WPT systems were compared and analyzed. A global multi-objective optimization design strategy was introduced based on the concept ofPareto optimal solutions. Furthermore, an 8.5 kW auxiliary WPT system prototype was built for verification. The experimental results demonstrated the proposed optimization scheme in meeting the design requirements of WPT systems for maglev trains, with an energy transfer efficiency of up to 91.9%.
format Article
id doaj-art-08d1085fe2e047b79bd50363d9e3e660
institution Kabale University
issn 1000-128X
language zho
publishDate 2025-01-01
publisher Editorial Department of Electric Drive for Locomotives
record_format Article
series 机车电传动
spelling doaj-art-08d1085fe2e047b79bd50363d9e3e6602025-08-20T03:52:55ZzhoEditorial Department of Electric Drive for Locomotives机车电传动1000-128X2025-01-0115416189786912Multi-objective optimization of auxiliary wireless power supply system for maglev trainsCHENG LongDONG KanWANG ShuoDuring the operation of maglev trains approaching stations, the electric energy generated by the linear generators propels the trains but is insufficient to meet the power demands of onboard equipment. Traditional contact power supply methods have shown deficiencies in various aspects, such as high installation and maintenance costs, as well as the safety risks associated with exposed live conductors. In contrast, wireless power transfer (WPT) technology eliminates the need for physical cable connections, allowing maglev trains to operate without mechanical contact and enhancing the safety, economic efficiency, and environmental adaptability of their auxiliary power supply system. This paper focuses on the optimized design for the magnetic coupling mechanism and resonant compensation circuit, addressing specific requirements of auxiliary WPT systems in maglev train applications including high power demands and efficiency requirements. A finite element model of a magnetic coupling mechanism with a single-transmitter multiple-receiver (STMR) configuration was established. The operational characteristics of three resonant compensation topologies (S/S, LCC/LCC, LCC/S) for WPT systems were compared and analyzed. A global multi-objective optimization design strategy was introduced based on the concept ofPareto optimal solutions. Furthermore, an 8.5 kW auxiliary WPT system prototype was built for verification. The experimental results demonstrated the proposed optimization scheme in meeting the design requirements of WPT systems for maglev trains, with an energy transfer efficiency of up to 91.9%.http://edl.csrzic.com/thesisDetails#10.13890/j.issn.1000-128X.2025.01.019maglev trainwireless power transfer (WPT)multi-objective optimizationmagnetic coupling mechanismresonant compensation topologyfinite element
spellingShingle CHENG Long
DONG Kan
WANG Shuo
Multi-objective optimization of auxiliary wireless power supply system for maglev trains
机车电传动
maglev train
wireless power transfer (WPT)
multi-objective optimization
magnetic coupling mechanism
resonant compensation topology
finite element
title Multi-objective optimization of auxiliary wireless power supply system for maglev trains
title_full Multi-objective optimization of auxiliary wireless power supply system for maglev trains
title_fullStr Multi-objective optimization of auxiliary wireless power supply system for maglev trains
title_full_unstemmed Multi-objective optimization of auxiliary wireless power supply system for maglev trains
title_short Multi-objective optimization of auxiliary wireless power supply system for maglev trains
title_sort multi objective optimization of auxiliary wireless power supply system for maglev trains
topic maglev train
wireless power transfer (WPT)
multi-objective optimization
magnetic coupling mechanism
resonant compensation topology
finite element
url http://edl.csrzic.com/thesisDetails#10.13890/j.issn.1000-128X.2025.01.019
work_keys_str_mv AT chenglong multiobjectiveoptimizationofauxiliarywirelesspowersupplysystemformaglevtrains
AT dongkan multiobjectiveoptimizationofauxiliarywirelesspowersupplysystemformaglevtrains
AT wangshuo multiobjectiveoptimizationofauxiliarywirelesspowersupplysystemformaglevtrains