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2026 №03 (06) DOI of Article
10.37434/tpwj2026.03.01
2026 №03 (02)

The Paton Welding Journal 2026 #03
The Paton Welding Journal, 2026, #3, 3-11 pages

Efficient welding of 80 mm S355ML plates using a hybrid laser-arc and narrow-gap SAW process

S. Gook1, M. Biegler1, A. Gumenyuk2, M. Rethmeier1,2,3

1Joining and Coating Technology, Fraunhofer Institute for Production Systems and Design Technology IPK, Pascalstraße 8-9, 10587, Berlin, Germany. E-mail: sergej.gook@ipk.fraunhofer.de
2Bundesanstalt für Materialforschung und –prüfung (BAM), Unter den Eichen 87, 12205, Berlin, Germany
3Institute of Machine Tools and Factory Management, Technische Universität Berlin, Pascalstraße 8-9, 10587, Berlin, Germany

Abstract
A new welding approach combining hybrid laser-arc welding (HLAW ) and narrow-gap submerged arc welding (SAW ) was investigated for joining 80 mm thick S355ML steel plates used in offshore wind turbine structures. The U-shaped joint preparation consisted of a 40 mm root face welded by HLAW, followed by a 23 mm narrow-gap section completed with multi-layer SAW passes. Process efficiency and mechanical performance were evaluated in comparison with conventional multi-pass SAW. The results showed that the combined process significantly reduces weld volume, filler metal consumption and heat input while maintaining the strength and toughness required for offshore applications. Mechanical testing confirmed a sound joint with a favorable and uniform hardness profile and adequate low-temperature performance. Charpy V-notch tests at –40 °C yielded average absorbed energies of 138±45 J in the arc-dominated region and 65±12 J in the laser-dominated region of the hybrid weld. The proposed approach provides an efficient and technically feasible solution for the fabrication of thick-walled offshore structures.
Keywords: hybrid laser-arc welding, submerged arc welding, S355ML, thick-section steel, microstructure, mechanical properties, impact toughness

Received: 11.12.2025
Received in revised form: 27.01.2026
Accepted: 02.03.2026

References

1. IEA. Net Zero by 2050: A Roadmap for the Global Energy Sector. International Energy Agency, Paris, 2021. Available at: https://www.iea.org/reports/net-zero-by-2050
2. Dillinger Hütte, Heavy Plates for Offshore Wind Energy Installations, Dillinger, Saarbrücken, Germany, 2016. https://en.dillinger.de/app/uploads/2024/03/20160215031443-dh_heavy_plates_for.pdf
3. Zhang, X., Li, G., Zhao, H. et al. (2024) Evolution of microstructure and mechanical properties along the thickness direction of 500 MPa HSLA steel heavy plates. Materials Sci. and Eng.: A, 913, 147097. https://doi.org/10.1016/j.msea.2024.147097
4. Wang, L., Wang, S. (2023) Study on austenite transformation and growth evolution of HSLA steels. Materials, 16(9), 3578 https://doi.org/10.3390/ma16093578
5. Neumann, M., Hälsig, A., Hensel, J. (2024) Influence of welding thermal cycles on properties of TMCP and Q&T steels evaluated by thermo-physical simulation. Welding in the World, 68(2), 183-197. https://doi.org/10.1007/s40194-023-01615-2
6. Shi, Y., Chen, D., Lei, Y., & Li, X. (2004). HAZ microstructure simulation in welding of a ultra fine grain steel. Computational Materials Sci., 31(3-4), 379-388. https://doi.org/10.1016/j.commatsci.2004.04.004
7. Zhang, X., Li, G., Zhao, H. et al. (2024) Evolution of microstructure and mechanical properties along the thickness direction of 500 MPa HSLA steel heavy plates. Materials Sci. and Eng. A, 913, 147097. https://doi.org/10.1016/j.msea.2024.147097
8. Liu, W., Li, Q., Yue, J. et al. (2025) Research status and progress of all-position narrow-gap GMAW for pipelines. Applied Sci., 15(5), 2270. https://doi.org/10.3390/app15052270
9. Wang, J.Y., Ren, Y.S., Yang, F., Guo, H.B. (2007) Novel rotation arc system for narrow gap MAG welding. Science and Technology of Welding and Joining, 12(6), 505-507. https://doi.org/10.1179/174329307X213756
10. Abe, Y., Fujimoto, T., Nakatani, M. et al. (2021) Study on proper welding condition for ultranarrow gap submerged arc welding. Welding Inter., 35(7-9), 369-381. https://doi.org/10.1080/09507116.2021.1980298
11. Mansur, V.M., de Figueiredo Mansur, R.A., de Carvalho, S.M. et al. (2021) Effect of laser welding on microstructure and mechanical behaviour of dual phase 600 steel sheets. Heliyon, 7(12). https://doi.org/10.1016/j.heliyon.2021.e08601
12. Volpp, J., Jonsén, P., Ramasamy, A., Kalfsbeek, B. (2021) Toughness properties at multi-layer laser beam welding of high-strength steels. Welding in the World, 65(1), 143-155. https://doi.org/10.1007/s40194-020-01004-z
13. Hu, C., Chen, L., Zhang, X. et al. (2022) Effects of preheating-induced interlaminar microstructural evolution on performance of fiber laser welded high strength low alloy steel. J. of Materials Research and Technology, 16, 335-346. https://doi.org/10.1016/j.jmrt.2021.12.010
14. Yetil, K.K., Colombo, D., Ayan, Y., Demir, A.G. (2024) Gap bridging in laser welding of EN AW 5083 with different joint configurations via beam oscillation and filler wire. The Inter. J. of Advanced Manufacturing Technology, 1-18. https://doi.org/10.1007/s00170-024-14228-w
15. Kah, P., Salminen, A., Martikainen, J. (2010) Laser-arc hybrid welding processes (Review). The Paton Welding J, 6, 32-40.
16. Costanza, G., Giudice, F., Missori, S. et al. (2025) An overview of the working conditions of laser-arc hybrid processes and their effects on steel plate welding. J. of Manufacturing and Materials Processing, 9(8), 248. https://doi.org/10.3390/jmmp9080248
17. He, Y., Song, X., Yang, Z. et al. (2025) Research and development progress of laser-arc hybrid welding: A review. Metals, 15(3), 326. https://doi.org/10.3390/met15030326
18. Üstündağ, Ö., Bakir, N., Gook, S. et al. (2022) Hybrid laser-arc welding of laser-and plasma-cut 20-mm-thick structural steels. Welding in the World, 66(3), 507-514. https://doi.org/10.1007/s40194-022-01255-y
19. Katayama, S., Yohei, A., Mizutani, M., Kawahito, Y. (2011) Development of deep penetration welding technology with high brightness laser under vacuum. Physics Procedia, 12, 75-80. https://doi.org/10.1016/j.phpro.2011.03.010
20. Gumenyuk, A., Üstündağ, Ö., Pelz, T. et al. (2024) Single pass laser vacuum welding of thick steel plates using electromagnetic support. Procedia CIRP, 124, 418-423. https://doi.org/10.1016/j.procir.2024.08.145
21. Rethmeier, M., Gumenyuk, A., Bachmann, M. (2022) High-power laser beam welding for thick section steels - new perspectives using electromagnetic systems. Science and Technology of Welding and Joining, 27(1), 43-51. https://doi.org/10.1080/13621718.2021.1999763
22. Bachmann, M., Avilov, V., Gumenyuk, A., Rethmeier, M. (2014) High-power laser welding of austenitic stainless steel with electromagnetic control of weld pool. The Paton Welding J., 3, 21. https://doi.org/10.15407/tpwj2014.03.04
23. Li, R., Yue, J., Shao, X. et al. (2015) A study of thick plate ultra- narrow-gap multi-pass multi-layer laser welding technology combined with laser cleaning. The Inter. J. of Advanced Manufacturing Technology, 81, 113-127. https://doi.org/10.1007/s00170-015-7193-0
24. Shi, H., Zhang, K., Xu, Z. et al. (2014) Applying statistical models optimize the process of multi-pass narrow-gap laser welding with filler wire. The Inter. J. of Advanced Manufacturing Technology, 75, 279-291. https://doi.org/10.1007/s00170-014-6159-y
25. Gumenyuk, A., Üstündağ, Ö., Pelz, T. et al. (2024) Single pass laser vacuum welding of thick steel plates using electromagnetic support. Procedia CIRP, 124, 418-423. https://doi.org/10.1016/j.procir.2024.08.145
26. Brunner-Schwer, C., Üstündağ, Ö., Bakir, N., Akyel, F. (2024) Auf dem Weg zum einlagigen Schweißen von dickwandigen Bauteilen-Prozesse, Potenziale, Beispiele. In: Schweißen im Anlagen- und behälterbau, 392, 101-105). DVS Media.
27. Reisgen, U., Olschok, S. (2009) Laser-submerged arc hybrid welding. The Paton Welding J., 4, 38-43.
28. Gook, S., Midik, A., Biegler, M. et al. (2022) Joining 30 mm thick shipbuilding steel plates EH36 using a process combination of hybrid laser arc welding and submerged arc welding. J. of Manufacturing and Materials Processing, 6(4), 84. https://doi.org/10.3390/jmmp6040084
29. Brätz, O., Henkel, K.M. (2023) Investigations on the microstructure of drawn arc stud welds on structural steels by quantitative metallography. Welding in the World, 67(1), 195-208. https://doi.org/10.1007/s40194-022-01417-y
30. Churiaque, C., Sánchez-Amaya, J.M., Porrúa-Lara, M. et al. (2021) The effects of HLAW parameters for one side t-joints in 15 mm thickness naval steel. Metals, 11(4), 600. https://doi.org/10.3390/met11040600
31. Atabaki, M.M., Ma, J., Yang, G., Kovacevic, R. (2014) Hybrid laser/arc welding of advanced high strength steel in different butt joint configurations. Materials & Design, 64, 573-587. https://doi.org/10.1016/j.matdes.2014.08.011
32. Choi, K.S., Lee, S.H., Chung, W.J. et al. (2019) Study of brittle crack propagation welding for EH40 steel plate in shipbuilding steel. J. of the Korean Society of Manufacturing Process Engineers, 18(5), 9-16. https://doi.org/10.14775/ksmpe.2019.18.5.009
33. Kawahito, Y., Wang, H., Katayama, S., Sumimori, D. (2018) Ultra high power (100 kW) fiber laser welding of steel. Optics Letters, 43(19), 4667-4670. https://doi.org/10.1364/OL.43.004667
34. Volpp, J., Jonsén, P., Ramasamy, A., Kalfsbeek, B. (2021) Toughness properties at multi-layer laser beam welding of high-strength steels. Welding in the World, 65(1), 143-155. https://doi.org/10.1007/s40194-020-01004-z

Suggested Citation

S. Gook, M. Biegler, A. Gumenyuk, M. Rethmeier (2026) Efficient welding of 80 mm S355ML plates using a hybrid laser-arc and narrow-gap SAW process. The Paton Welding J., 03, 3-11. https://doi.org/10.37434/tpwj2026.03.01