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Prediction of Cu-Al weld status using convolutional neural network
Mathivanan, Karthik; Plapper, Peter
2021Lasers in Manufacturing (LiM)
 

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Keywords :
Aluminum-copper joints; weld analysis; weld type prediction; Laser welding; Convolution neural network; Intermetallic phases; Image processing; Energy Dispersive X-ray Spectroscopy (EDS) analysis
Abstract :
[en] Welding copper (Cu) and aluminum (Al) result in brittle intermetallic (IMC) phases, which reduces the joint performance. The key for a strong joint is to maintain an optimum amount of Al and Cu composition in the joint. To implement this without the destruction of the sample is a challenge. For this purpose, high-resolution images of the weld zone are utilized after welding. With the image processing technique, the presence of (Al/Cu) material melted is distinguished. Therefore, the different weld type/status like insufficient melt, optimum melt, and excessive melt is detected from the images. This paper analyses the weld images and applies the convolutional neural network technique to predict the weld type. The microstructure and Energy Dispersive X-ray Spectroscopy (EDS) analysis of the fusion zone for each weld type are correlated to the weld images.
Disciplines :
Mechanical engineering
Author, co-author :
Mathivanan, Karthik ;  University of Luxembourg > Faculty of Science, Technology and Medicine (FSTM) > Department of Engineering (DoE)
Plapper, Peter ;  University of Luxembourg > Faculty of Science, Technology and Medicine (FSTM) > Department of Engineering (DoE)
External co-authors :
no
Language :
English
Title :
Prediction of Cu-Al weld status using convolutional neural network
Publication date :
21 June 2021
Number of pages :
10
Event name :
Lasers in Manufacturing (LiM)
Event organizer :
German Scientific Laser Society (WLT e.V.)
Event place :
Munich (Virtual), Germany
Event date :
21-06-2021 tp 24-06-2021
Audience :
International
Focus Area :
Physics and Materials Science
Additional URL :
Funders :
European Regional Development Fund (FEDER)
Available on ORBilu :
since 19 July 2021

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