Texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel

Silicon steel is a widely used soft magnetic material that requires different texture components for different applications, typically classified as grain-oriented or non-oriented. However, the methods of fabricating such types of silicon steel via laser-powder bed fusion (LPBF) have not been fully...

Full description

Saved in:
Bibliographic Details
Main Authors: Meng, Fanbo, Huang, Sheng, Lau, Kwang Boon, Zhou, You, Deng, Yuheng, Wang, Pei, Shen, Xiaojun, Lee, Christopher Ho Tin
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2023
Subjects:
Online Access:https://hdl.handle.net/10356/169157
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-169157
record_format dspace
spelling sg-ntu-dr.10356-1691572023-07-07T15:39:10Z Texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel Meng, Fanbo Huang, Sheng Lau, Kwang Boon Zhou, You Deng, Yuheng Wang, Pei Shen, Xiaojun Lee, Christopher Ho Tin School of Electrical and Electronic Engineering School of Mechanical and Aerospace Engineering School of Materials Science and Engineering Engineering::Electrical and electronic engineering Engineering::Materials Additive Manufacturing Silicon Steel Silicon steel is a widely used soft magnetic material that requires different texture components for different applications, typically classified as grain-oriented or non-oriented. However, the methods of fabricating such types of silicon steel via laser-powder bed fusion (LPBF) have not been fully investigated. In this study, near grain-oriented and near non-oriented Fe-3.5 wt.%Si silicon steel is fabricated using LPBF by controlling processing parameters. Different textures are investigated using electron backscatter diffraction (EBSD), and the morphology of the molten pool is characterized by optical microscopy (OM) and scanning electron microscopy (SEM). Magnetic properties are measured with alternating current (AC) method. The results show that reducing both the linear energy density (LED) and laser power leads to a change in the side morphology of the molten pool from large, flat, and well-overlapped to small, protuberant, and less-overlapped, resulting in an extremely strong θ-fiber texture or a random distribution of grain orientations, respectively. Additionally, reducing both the laser power and scanning speed causes the top morphology of the molten pool to change from teardrop to elliptical shape at the trailing edge, resulting in a shift in the angle between the 〈0 0 1〉 of grains in the θ-fiber texture and the scanning direction from 45° to 30°. Samples with fewer defects (i.e., larger grain size and fewer pores) and a larger area fraction of 〈0 0 1〉//H exhibit higher permeability, although this superiority is not so significant due to residual stress and high dislocation in the as-built samples. This study provides insight into the relationship between processing parameters, texture evolution, and magnetic properties in LPBFed silicon steel. Agency for Science, Technology and Research (A*STAR) National Research Foundation (NRF) Published version This work was supported by National Research Foundation (NRF) Singapore under its NRF Fellowship Grant NRF-NRFF12- 2020-0003; the Agency for Science, Technology and Research (A*STAR) of Singapore via the Structural Metal Alloys Programme (No. A18B1b0061); and the Individual Research Grant (Grant reference No. A20E7c0109) of the Agency for Science, Technology and Research of Singapore. 2023-07-04T02:22:22Z 2023-07-04T02:22:22Z 2023 Journal Article Meng, F., Huang, S., Lau, K. B., Zhou, Y., Deng, Y., Wang, P., Shen, X. & Lee, C. H. T. (2023). Texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel. Materials & Design, 231, 112037-. https://dx.doi.org/10.1016/j.matdes.2023.112037 0264-1275 https://hdl.handle.net/10356/169157 10.1016/j.matdes.2023.112037 2-s2.0-85160618660 231 112037 en NRF-NRFF12-2020-0003 A18B1b0061 A20E7c0109 Materials & Design © 2023 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/). application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
Engineering::Materials
Additive Manufacturing
Silicon Steel
spellingShingle Engineering::Electrical and electronic engineering
Engineering::Materials
Additive Manufacturing
Silicon Steel
Meng, Fanbo
Huang, Sheng
Lau, Kwang Boon
Zhou, You
Deng, Yuheng
Wang, Pei
Shen, Xiaojun
Lee, Christopher Ho Tin
Texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel
description Silicon steel is a widely used soft magnetic material that requires different texture components for different applications, typically classified as grain-oriented or non-oriented. However, the methods of fabricating such types of silicon steel via laser-powder bed fusion (LPBF) have not been fully investigated. In this study, near grain-oriented and near non-oriented Fe-3.5 wt.%Si silicon steel is fabricated using LPBF by controlling processing parameters. Different textures are investigated using electron backscatter diffraction (EBSD), and the morphology of the molten pool is characterized by optical microscopy (OM) and scanning electron microscopy (SEM). Magnetic properties are measured with alternating current (AC) method. The results show that reducing both the linear energy density (LED) and laser power leads to a change in the side morphology of the molten pool from large, flat, and well-overlapped to small, protuberant, and less-overlapped, resulting in an extremely strong θ-fiber texture or a random distribution of grain orientations, respectively. Additionally, reducing both the laser power and scanning speed causes the top morphology of the molten pool to change from teardrop to elliptical shape at the trailing edge, resulting in a shift in the angle between the 〈0 0 1〉 of grains in the θ-fiber texture and the scanning direction from 45° to 30°. Samples with fewer defects (i.e., larger grain size and fewer pores) and a larger area fraction of 〈0 0 1〉//H exhibit higher permeability, although this superiority is not so significant due to residual stress and high dislocation in the as-built samples. This study provides insight into the relationship between processing parameters, texture evolution, and magnetic properties in LPBFed silicon steel.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Meng, Fanbo
Huang, Sheng
Lau, Kwang Boon
Zhou, You
Deng, Yuheng
Wang, Pei
Shen, Xiaojun
Lee, Christopher Ho Tin
format Article
author Meng, Fanbo
Huang, Sheng
Lau, Kwang Boon
Zhou, You
Deng, Yuheng
Wang, Pei
Shen, Xiaojun
Lee, Christopher Ho Tin
author_sort Meng, Fanbo
title Texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel
title_short Texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel
title_full Texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel
title_fullStr Texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel
title_full_unstemmed Texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel
title_sort texture components and magnetic properties of laser powder bed fusion fabricated near grain-oriented and near non-oriented silicon steel
publishDate 2023
url https://hdl.handle.net/10356/169157
_version_ 1772828475928870912