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Optimal Design of IPMSM for EV Using Subdivided Kriging Multi-Objective Optimization

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Abstract
In this paper, subdivided kriging multi-objective optimization (SKMOO) is proposed for the optimal design of interior permanent magnet synchronous motor (IPMSM). The SKMOO with surrogate kriging model can obtain a uniform and accurate pareto front set with a reduced computation cost compared to conventional algorithms which directly adds the solution in the objective function area. In other words, the proposed algorithm uses a kriging surrogate model, so it is possible to know which design variables have the value of the objective function on the blank space. Therefore, the solution can be added directly in the objective function area. In the SKMOO algorithm, a non-dominated sorting method is used to find the pareto front set and the fill blank method is applied to prevent premature convergence. In addition, the subdivided kriging grid is proposed to make a well-distributed and more precise pareto front set. Superior performance of the SKMOO is confirmed by compared conventional multi objective optimization (MOO) algorithms with test functions and are applied to the optimal design of IPMSM for electric vehicle.
Author(s)
안종민백명기박상훈임동국
Issued Date
2021
Type
Article
Keyword
electric vehiclefill blankinterior permanent magnet synchronous motorkrigingmulti-objective optimization
DOI
10.3390/pr9091490
URI
https://oak.ulsan.ac.kr/handle/2021.oak/8817
https://ulsan-primo.hosted.exlibrisgroup.com/primo-explore/fulldisplay?docid=TN_cdi_doaj_primary_oai_doaj_org_article_3ca009a1f5be4ab8baaacc1b30089b20&context=PC&vid=ULSAN&lang=ko_KR&search_scope=default_scope&adaptor=primo_central_multiple_fe&tab=default_tab&query=any,contains,Optimal%20Design%20of%20IPMSM%20for%20EV%20Using%20Subdivided%20Kriging%20Multi-Objective%20Optimization&offset=0&pcAvailability=true
Publisher
PROCESSES
Location
스위스
Language
영어
ISSN
2227-9717
Citation Volume
9
Citation Number
9
Citation Start Page
1490
Citation End Page
1490
Appears in Collections:
Engineering > Aerospace Engineering
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