Analysis of interlocking performances on non-oriented electrical steels

In order to reduce energy loss in motor, applications of high-efficiency non-oriented electrical steel sheets and optimal laminating process are both important elements. The motor core loss deterioration is influenced by a number of factors, such as flux distribution, stress and strain, space harmon...

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Main Authors: Li-Hsiang Liu, Lee-Cheng Liu
Format: Article
Language:English
Published: AIP Publishing LLC 2018-05-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5005071
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spelling doaj-6dd01715a59d4678a8c92652e1a9588c2020-11-24T21:29:53ZengAIP Publishing LLCAIP Advances2158-32262018-05-0185056605056605-510.1063/1.5005071060891ADVAnalysis of interlocking performances on non-oriented electrical steelsLi-Hsiang Liu0Lee-Cheng Liu1Micro/Meso Mechanical Manufacturing R&D Department, Metal Industries Research & Development Centre No. 1001, Kaonan Highway, Nanzi District, Kaohsiung 81160, TaiwanIron and Steel Research and Development Department, China Steel Corporation No. 1, Chung Kang Rd., Hsiao Kang District, Kaohsiung 81233, TaiwanIn order to reduce energy loss in motor, applications of high-efficiency non-oriented electrical steel sheets and optimal laminating process are both important elements. The motor core loss deterioration is influenced by a number of factors, such as flux distribution, stress and strain, space harmonics, temperature, and short circuits between lamination. In conventional clamping method, steel sheets are laminated via interlocking or welding in general manner. The measured energy loss by welding was much larger than that by interlocking. Therefore, interlocking is well known and usually employed with benefit of easy conducting. The protuberance shapes affected the fastening strength. Generally, the intensity of rectangular type is stronger than the circular counterparts. However, the circular interlocking has better magnetic characteristics. To clarify the method effectiveness, interlocking performances regarding fastened strength and magnetic deterioration by lamination were investigated. The key parameters of protuberance shape and forming depth were designed. Precisely manufacturing operation was applied to avoid interlocking failure. Magnetic properties largely influenced by clamping method are crucial to minimizing the magnetic deterioration during laminating procedure. Several experiments for various processing conditions were undertaken, and the quantification results showed the rectangular interlocking had better fastened strength but worsened iron loss comparing with the circular arrangement. To acquire the comprehensive mechanical and electrical identities for electrical steel lamination, deliberate producing conditions regarding minimizing the magnetic deterioration should be adopted prudently.http://dx.doi.org/10.1063/1.5005071
collection DOAJ
language English
format Article
sources DOAJ
author Li-Hsiang Liu
Lee-Cheng Liu
spellingShingle Li-Hsiang Liu
Lee-Cheng Liu
Analysis of interlocking performances on non-oriented electrical steels
AIP Advances
author_facet Li-Hsiang Liu
Lee-Cheng Liu
author_sort Li-Hsiang Liu
title Analysis of interlocking performances on non-oriented electrical steels
title_short Analysis of interlocking performances on non-oriented electrical steels
title_full Analysis of interlocking performances on non-oriented electrical steels
title_fullStr Analysis of interlocking performances on non-oriented electrical steels
title_full_unstemmed Analysis of interlocking performances on non-oriented electrical steels
title_sort analysis of interlocking performances on non-oriented electrical steels
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2018-05-01
description In order to reduce energy loss in motor, applications of high-efficiency non-oriented electrical steel sheets and optimal laminating process are both important elements. The motor core loss deterioration is influenced by a number of factors, such as flux distribution, stress and strain, space harmonics, temperature, and short circuits between lamination. In conventional clamping method, steel sheets are laminated via interlocking or welding in general manner. The measured energy loss by welding was much larger than that by interlocking. Therefore, interlocking is well known and usually employed with benefit of easy conducting. The protuberance shapes affected the fastening strength. Generally, the intensity of rectangular type is stronger than the circular counterparts. However, the circular interlocking has better magnetic characteristics. To clarify the method effectiveness, interlocking performances regarding fastened strength and magnetic deterioration by lamination were investigated. The key parameters of protuberance shape and forming depth were designed. Precisely manufacturing operation was applied to avoid interlocking failure. Magnetic properties largely influenced by clamping method are crucial to minimizing the magnetic deterioration during laminating procedure. Several experiments for various processing conditions were undertaken, and the quantification results showed the rectangular interlocking had better fastened strength but worsened iron loss comparing with the circular arrangement. To acquire the comprehensive mechanical and electrical identities for electrical steel lamination, deliberate producing conditions regarding minimizing the magnetic deterioration should be adopted prudently.
url http://dx.doi.org/10.1063/1.5005071
work_keys_str_mv AT lihsiangliu analysisofinterlockingperformancesonnonorientedelectricalsteels
AT leechengliu analysisofinterlockingperformancesonnonorientedelectricalsteels
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