Porosity in zinc-coated advanced high strength steels during gas metal arc welding

Authors

DOI:

https://doi.org/10.3989/revmetalm.e289.1730

Keywords:

Convective currents, Galvanised coating, Shield gas, Steel, Welding

Abstract


The behaviour of a galvanised advanced high strength steel while being welded using wires and shielding atmospheres of different chemical compositions was studied. The analyses included metallographic examination and digital X-ray radiography to detect the porosity within the weld beads. Metallographic examination of welded samples revealed that the porosity was of the wormhole type. The results showed that porosity, attributed to vaporising of the zinc coating, increased as welding heat input augmented due to its effect on the solidification and cooling rates of the weld pool, allowing for a higher rate of zinc evaporation. Porosity was found to increase as the CO2 content in the shield gas was reduced, as well as the amount of silicon of the wires augmented, as both factors contribute to reduce the surface tension of the molten metal, which affects the shape of the Marangoni’s currents within the weld pool that will reduce the capacity of zinc fumes to escape from the weld pool.

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References

A5.18/A5.18M (2021). Specification for carbon steel electrodes and rods for gas shielded arc welding. American Welding Society (AWS).

Ahsan, M.R.U., Kim, Y.R., Kim, C.H., Kim, J.W., Ashiri, R., Park, Y.D. (2016). Porosity formation mechanisms in cold metal transfer (CMT) gas metal arc welding (GMAW) of zinc coated steels. Sc. Technol. Weld. Joi. 21 (3), 209-215. https://doi.org/10.1179/1362171815Y.0000000084

Ahsan, M.R.U., Cheepu, M., Ashiri, R., Kim, T.H., Jeong, C., Park, Y.D. (2017). Mechanism of weld pool flow and slag formation location in cold metal transfer (CMT) gas metal arc welding (GMAW). Weld. World 61, 1275-1285. https://doi.org/10.1007/s40194-017-0489-y

Chiocca, A., Bordreuil, C., Soulié, F., Deschaux-Beaume, F. (2019). An analysis of fluid flows and solidification mechanisms during GTA welding by the means of in situ observations. Weld. World 63, 481-490. https://doi.org/10.1007/s40194-018-0673-8

Davies, G.J., Garland, J.G. (1975). Solidification structures and properties of fusion welds. Int. Metall. Rev. 20 (1), 83-108. https://doi.org/10.1179/imr.1975.20.1.83

E1742/E1742M-23 (2023). Standard practice for radiographic examination. American Society for Testing and Materials (ASTM).

Fonstein, N.M. (2015). Advanced high strength sheet steels. Physical Metallurgy, Design, Processing and Properties. Springer International Publishing, Switzerland. https://doi.org/10.1007/978-3-319-19165-2

Gu, H., Mueller, R. (2001). Hybrid welding of galvanized steel sheet. Proc. Laser Mat. Proc. Conf. Laser Microfabr. Conf. (ICALEO 2001), 135-139. https://doi.org/10.2351/1.5059800

Han, S.W., Cho, W.I., Na, S.J., Kim, C.H. (2013). Influence of driving forces on weld pool dynamics in GTA and laser welding. Weld. World 57, 257-264. https://doi.org/10.1007/s40194-012-0020-4

He, L., Zhao, H., Niu, W. (2018). Understanding the effect of oxygen on weld pool and keyhole in laser beam welding. J. Laser Appl. 30 (1), 012003. https://doi.org/10.2351/1.5017703

Heiple, C.R., Roper, J.R. (1982). Mechanism for minor element effects on GTA fusion zone geometry. Weld. J. 61(4), 97-102.

Heiple, C.R., Roper, J.R., Stagner, R.T., Aden, R.J. (1983). Surface active element effects on the shape of GTA, laser and electron beam welds. Weld. Res. Suppl. 62 (3), 72-77.

Heiple, C.R., Roper, J.R. (1990). The geometry of gas tungsten arc, gas metal arc, and submerged arc weld beads. In Materials Processing: Theory and Practice. Olson DL, Dixon R, Liby AL, Eds., North Holland, Amsterdam, pp. 1-34. https://doi.org/10.1016/B978-0-444-87427-6.50007-1

Hu, J., Tsai, H.L. (2007). Heat and mass transfer in gas metal arc welding. Part I: The arc. Int. J. Heat Mass Transf. 50 (5-6), 833-846. https://doi.org/10.1016/j.ijheatmasstransfer.2006.08.025

ISO 5817 (2023). Welding. Fusion-welded joints in steel, nickel, titanium and their alloys (beam welding excluded). Quality levels for imperfections. International Organization for Standardization. https://www.iso.org/standard/80209.html.

Izutani, S., Yamazaki, K., Suzuki, R., Ueda, Y., Nakamura, K., Uezono, T. (2013). Blowhole generation phenomenon and quality improvement in GMAW of galvanized steel sheet. Int. J. Autom. Techn. 17 (1), 103-108. https://doi.org/10.20965/ijat.2013.p0103

Kou, S. (2003). Welding Metallurgy. John Wiley & Sons. https://doi.org/10.1002/0471434027

Kuo, S. (2012). Fluid Flow and Solidification in Welding: Three Decades of Fundamental Research at the University of Wisconsin. Weld. J., 91, 287s-302s.

Li, K., Lu, F., Cui, H., Li, X., Tang, X., Li, Z. (2015). Investigation on the effects of shielding gas on porosity in fiber laser welding of T-joints steels. Int. J. Adv. Manuf. Technol. 77, 1881-1888. https://doi.org/10.1007/s00170-014-6538-4

Lu, S., Fujii, H., Nogi, K. (2004). Marangoni convection and weld shape variations in Ar-O2 and Ar-CO2 shielded GTA welding. Mater. Sci. Eng. A 380 (1-2), 290-297. https://doi.org/10.1016/j.msea.2004.05.057

Messler, R.W. (1999). Principles of Welding; Processes, Physics, Chemistry and Metallurgy. WILEY-VCH, Weinheim. https://doi.org/10.1002/9783527617487 PMid:10427975

Mills, K.C., Keene, B.J., Brooks, R.F., Shirali, A. (1998). Marangoni effects in welding. Philos. Trans. A Math. Phys. Eng. Sci. 356, 911-925. https://doi.org/10.1098/rsta.1998.0196

Mills, K.C., Keene, B.J. (1990). Factors affecting variable weld penetration. Int. Mat. Rev. 35, 185-216. https://doi.org/10.1179/095066090790323966

Monier, R., Thumerel, F., Chapuis, J., Gilles, P., Soulié, F., Bordreuil, C. (2016). In situ experimental measurement of temperature field and surface tension during pulsed GMAW. Weld. World 60, 1021-1028. https://doi.org/10.1007/s40194-016-0358-0

Pieters, R.R.G.M., Bakels, J.G., Hermans, M.J.M., den Ouden. G. (2006). Laser welding of zinc coated steels in an edge lap configuration. J. Laser Appl. 18, 199-204. https://doi.org/10.2351/1.2227022

Pieters, R.R.G.M., Goos, C., Rietman, B., Richardson, I.M. (2008). Zinc transport phenomena in laser welding of coated sheet steel in overlap configuration. Weld. World 52, 33-41. https://doi.org/10.1007/BF03266650

Pires, I., Quintino, L., Miranda, R.M. (2007). Analysis of the influence of shielding gas mixtures on the gas metal arc welding metal transfer modes and fume formation rate. Mater. Des. 28 (5), 1623-1631. https://doi.org/10.1016/j.matdes.2006.02.012

Sato, Y., Kuwan, T. (1995). Oxygen absorption in iron and steel weld metal. ISIJ Int. 35 (10), 1162-1169. https://doi.org/10.2355/isijinternational.35.1162

Yang, S., Carlson, B., Kovacevic, R. (2011). Laser welding of high strength galvanized steels in a gap-free lap joint configuration under different shielding conditions. Weld. J. 90 (1), 8-18.

Yu, J., Cho, S.M. (2017). Metal cored welding wire for minimizing weld porosity of zinc-coated steel. J. Mater. Process. Tech. 249, 350-357. https://doi.org/10.1016/j.jmatprotec.2017.06.012

Yuan, Y., Yamazaki, K., Suzuki, R. (2016). Relationship between penetration and porosity in horizontal fillet welding by a new process "Hybrid tandem MAG welding process". Weld. World 60, 515-524. https://doi.org/10.1007/s40194-016-0314-z

Zacharia, T., David, S.A., Vitek, J.M. (1991). Effect of evaporation and temperature-dependent material properties on weld pool development. Metall. Trans. B 22, 233-241. https://doi.org/10.1007/BF02652488

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Published

2025-12-30

How to Cite

Gallegos, E. A. ., & Colás, R. . (2025). Porosity in zinc-coated advanced high strength steels during gas metal arc welding. Revista De Metalurgia, 61(4), e289. https://doi.org/10.3989/revmetalm.e289.1730

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