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  4. Process advantages of laser hybrid welding compared to conventional arc-based welding processes for joining thick steel structures of wind tower
 
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December 22, 2023
Journal Article
Title

Process advantages of laser hybrid welding compared to conventional arc-based welding processes for joining thick steel structures of wind tower

Abstract
The most common welding processes when joining thick-walled steels in the industry are arc-based welding processes such as GMAW or SAW. For this purpose, the sheets are joined in multi-layer technique, which can lead to productivity losses due to high welding times. The process-specific challenges in welding thick steels using multi-layer technique relate to the high heat input from the process. Therefore, alternative welding processes are being actively sought. A suitable alternative is provided by beam-based welding processes such as the laser hybrid welding processes, which are characterized by deep penetration welds and lower heat input. With implementation of the laser hybrid welding process in the heavy industry, such as the wind tower industry, economic benefits can be reached such as the increase in productivity by reducing the layer number, and the lower consumption of filler material and energy. When comparing SAW welded 25 mm thick steels in five to six layers and single-pass laser hybrid welding, the welding time can be reduced more than 80 % and the costs of filler material, flux and energy can be saved up to 90 %. However, the industrial use of the laser hybrid welding process is still limited to applications, where the material thickness does not exceed 15 mm due to some process-specific challenges such as the sagging, sensitivity to manufacturing tolerances such as gaps and misalignment, limited filler wire mixing, and deteriorated mechanical properties resulting from high cooling rates. To overcome these challenges, a contactless electromagnetic backing based on an externally applied AC magnetic field was used. Eddy currents are induced due to the oscillating magnetic field, and an upward-oriented Lorentz force is generated to counteract the droplets formed due to gravitational forces. It allows to weld up to 30 mm thick structural steels in a single-pass with a 20-kW fiber laser system. Additionally, the gap bridgeability and the misalignment of edges were increased to 2 mm when welding 20 mm thick steels. With the aid of the AC magnetic field, a vortex was formed in the weld root, which had a positive effect on the filler wire mixing.
Author(s)
Brunner-Schwer, Christian  
Fraunhofer-Institut für Produktionsanlagen und Konstruktionstechnik IPK  
Üstündag, Ömer
Bundesanstalt für Materialforschung und -prüfung -BAM-, Berlin  
Bakir, Nasim
Bundesanstalt für Materialforschung und -prüfung -BAM-, Berlin  
Gumenyuk, Andrey  
Bundesanstalt für Materialforschung und -prüfung -BAM-, Berlin  
Rethmeier, Michael  
Technische Universität Berlin, Institute for Machine Tools and Factory Management
Journal
IOP conference series. Materials science and engineering  
Conference
Nordic Laser Materials Processing Conference 2023  
Open Access
DOI
10.1088/1757-899X/1296/1/012028
Additional full text version
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Language
English
Fraunhofer-Institut für Produktionsanlagen und Konstruktionstechnik IPK  
Keyword(s)
  • Laser hybrid welding

  • Thick plates

  • Wind turbine tower

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