Mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study

Welding quality of electron beam welded joint is usually susceptible to the stability of keyhole during welding process. The more stable the keyhole, the better the welding quality. To reveal the evolution mechanism of keyhole and welding quality of the electron beam welded joint of magnesium-gadoli...

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Main Authors: Yin, Qianxing, Yang, Ziyou, Li, Hui, Du, Hejun
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2024
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Online Access:https://hdl.handle.net/10356/181319
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1813192024-11-30T16:48:47Z Mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study Yin, Qianxing Yang, Ziyou Li, Hui Du, Hejun School of Mechanical and Aerospace Engineering Engineering Scanning path Fluid flow Welding quality of electron beam welded joint is usually susceptible to the stability of keyhole during welding process. The more stable the keyhole, the better the welding quality. To reveal the evolution mechanism of keyhole and welding quality of the electron beam welded joint of magnesium-gadolinium alloy under different scanning path, numerical simulation was conducted for the changes in morphology of keyhole and liquid flow in molten pool. The magnesium-gadolinium alloy was welded by electron beam in vacuum with two different scanning paths, sinusoid path and cochleoid path, indicating the identical heat input, welding speed, and focusing state. The stability of keyhole was mainly related to the frequency of keyhole collapse. When the sinusoid scanning path was adopted, the fluids both inside the molten pool and at keyhole wall were disorder, corresponding to the numerous independent vortices and dramatically chaotic flows at their junctions. The maximum velocity of fluids ranged from 0.79 m/s to 1.02 m/s. The average and maximum depth of keyhole were 3.48 mm and 4.51 mm, respectively, meaning that the keyhole collapsed frequently. As the scanning path was changed into cochleoid mode, the electron beam scanned in a homogeneous manner without abrupt change in direction and speed like sinusoid path at its peaks and troughs. The maximum velocity of fluids was more uniform without drastic variation, ranging from 0.90 m/s to 1.01 m/s. The average and maximum depth of keyhole were decreased to 3.30 mm and 4.05 mm, respectively, indicating the more stable keyhole and alleviated collapse. Both the actual in-situ capture of molten pool signature and porosity inside the weld corresponded to the analysis of the change in keyhole stability. Published version This work was financially supported by China National Postdoctoral Program for Innovative Talents (BX20230269), National Key R&D Program of China (2022YFB4600800), Fundamental Research Funds for The Central Universities (2042024kf0015). 2024-11-25T06:50:13Z 2024-11-25T06:50:13Z 2024 Journal Article Yin, Q., Yang, Z., Li, H. & Du, H. (2024). Mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study. Journal of Magnesium and Alloys. https://dx.doi.org/10.1016/j.jma.2024.07.006 2213-9567 https://hdl.handle.net/10356/181319 10.1016/j.jma.2024.07.006 2-s2.0-85198596963 en Journal of Magnesium and Alloys © 2024 Chongqing University. Publishing services provided by Elsevier B.V. on behalf of KeAi Communications Co. Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/) Peer review under responsibility of Chongqing University. 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
Scanning path
Fluid flow
spellingShingle Engineering
Scanning path
Fluid flow
Yin, Qianxing
Yang, Ziyou
Li, Hui
Du, Hejun
Mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study
description Welding quality of electron beam welded joint is usually susceptible to the stability of keyhole during welding process. The more stable the keyhole, the better the welding quality. To reveal the evolution mechanism of keyhole and welding quality of the electron beam welded joint of magnesium-gadolinium alloy under different scanning path, numerical simulation was conducted for the changes in morphology of keyhole and liquid flow in molten pool. The magnesium-gadolinium alloy was welded by electron beam in vacuum with two different scanning paths, sinusoid path and cochleoid path, indicating the identical heat input, welding speed, and focusing state. The stability of keyhole was mainly related to the frequency of keyhole collapse. When the sinusoid scanning path was adopted, the fluids both inside the molten pool and at keyhole wall were disorder, corresponding to the numerous independent vortices and dramatically chaotic flows at their junctions. The maximum velocity of fluids ranged from 0.79 m/s to 1.02 m/s. The average and maximum depth of keyhole were 3.48 mm and 4.51 mm, respectively, meaning that the keyhole collapsed frequently. As the scanning path was changed into cochleoid mode, the electron beam scanned in a homogeneous manner without abrupt change in direction and speed like sinusoid path at its peaks and troughs. The maximum velocity of fluids was more uniform without drastic variation, ranging from 0.90 m/s to 1.01 m/s. The average and maximum depth of keyhole were decreased to 3.30 mm and 4.05 mm, respectively, indicating the more stable keyhole and alleviated collapse. Both the actual in-situ capture of molten pool signature and porosity inside the weld corresponded to the analysis of the change in keyhole stability.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Yin, Qianxing
Yang, Ziyou
Li, Hui
Du, Hejun
format Article
author Yin, Qianxing
Yang, Ziyou
Li, Hui
Du, Hejun
author_sort Yin, Qianxing
title Mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study
title_short Mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study
title_full Mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study
title_fullStr Mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study
title_full_unstemmed Mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study
title_sort mechanism of keyhole evolution and welding quality of electron beam welded magnesium alloy with scanning path variation via modeling and numerical study
publishDate 2024
url https://hdl.handle.net/10356/181319
_version_ 1819112966909329408