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Deep neural network-based modeling and optimization methodology of fuel cell electric vehicles considering power sources and electric motors

Authors
Kim, Dong-MinKwon, KihanCha, Kyoung-SooMin, SeungjaeLim, Myung-Seop
Issue Date
May-2024
Publisher
Elsevier BV
Keywords
Adaptive layering and sampling (ALS); Air compressor motor; Deep neural network; Energy consumption; Fuel cell electric vehicle (FCEV); Traction motor
Citation
Journal of Power Sources, v.603, pp 1 - 10
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
Journal of Power Sources
Volume
603
Start Page
1
End Page
10
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/204913
DOI
10.1016/j.jpowsour.2024.234401
ISSN
0378-7753
1873-2755
Abstract
This study proposes a modeling and optimization methodology for fuel cell electric vehicles (FCEVs). Among FCEV components, the traction motor, lithium-ion battery, fuel cell stack, and air supply system are mainly investigated. The FCEV modeling is performed based on the vehicle specifications, electromagnetic finite element analysis, and experimental data. To conduct design optimization, deep neural networks (DNNs) are adopted and trained to predict vehicle performance considering the fluctuation of applied direct current voltage. At this stage, the adaptive layering and sampling algorithm was suggested, which enables efficient DNN construction. To confirm the feasibility of the suggested training algorithm, the number of hidden layers and sampling points of constructed DNNs are investigated. Finally, DNN-based fuel economy optimization is performed considering the driving performance. The effectiveness of the proposed optimization methodology is validated by additional optimization results.
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COLLEGE OF ENGINEERING (DEPARTMENT OF AUTOMOTIVE ENGINEERING)
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