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Effect of tin added to the zinc bath on the formation and the microstructure of hot-dip galvanized coatings

  • Marie-Noëlle Avettand-Fènoël EMAIL logo , Guy Reumont , Frank Goodwin , Pierre Perrot and Jacques Foct
Published/Copyright: January 12, 2022
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Abstract

The present study aims to analyze the effect of tin, added to zinc bath containing aluminium, on the microstructure and on the development of spangles of continuous hot-dip galvanized coatings. Different experimental conditions have been explored and the mechanism of nucleation and growth taking place during the solidification of the coating are discussed with the support of a thermodynamics approach.


Dr. Marie-Noëlle Avettand-Fènoël Laboratoire de Métallurgie Physique et Génie des Matériaux U.M.R. C.N.R.S. 8517 Bâtiment C6, Second étage Université de Lille, 59655 Villeneuve d’Ascq, FranceTel.: +33 32 043 6927 Fax: +33 32 043 4040

References

[1] J. Strutzenberger, J. Faderl: Met. and Mat. Trans. A 29 (1998) 634.10.1007/s11661-998-0144-8Search in Google Scholar

[2] F.A. Fasoyinu, F. Weinberg: Met. Trans. B 21 (June 1990) 549.10.1007/BF02667868Search in Google Scholar

[3] A.R. Marder: Progress in Materials Science 45 (2000) 191.10.1016/S0079-6425(98)00006-1Search in Google Scholar

[4] M.-N. Avettand-Fènoël, N. David, G. Reumont, J.-M. Fiorani, M. Vilasi, P. Perrot, in XXXI JEEP: Barcelone – Eds: T. Calvet and J. Li Tamarit – (2005) 71.Search in Google Scholar

[5] A.T. Dinsdale: Calphad 15 (1991) 317.10.1016/0364-5916(91)90030-NSearch in Google Scholar

[6] B. Sundman, B. Jansson, J.O. Andersson: Calphad 9 (1985) 153.10.1016/0364-5916(85)90021-5Search in Google Scholar

[7] P.R.M. Syahbuddin, C.S. Munroe, B. Gleeson Laksmi: Mat. Science and Eng. A 251 (1998) 87.10.1016/S0921-5093(98)00641-8Search in Google Scholar

[8] J.D. Culcasi, P.R. Seré, C.I. Elsner, A.R. Di Sarli: Surface and Coatings Technology 122 (1999) 21.10.1016/S0257-8972(99)00404-1Search in Google Scholar

[9] Y. De Abreu, A. Da Silva, A. Ruiz, R. Requiz, N. Angulo, R. Alanis: Surface and Coatings Technology 120–121 (1999) 682.10.1016/S0257-8972(99)00358-8Search in Google Scholar

[10] C.S. Lin, M. Meshii, in: Conference Proceedings GALVA-TECH’95: ‘The Use and Manufacture of Zinc and Zinc Alloy Coated Sheet Steel Products into the 21st Century’ Chicago – Iron and Steel Society – (1995) 327.Search in Google Scholar

[11] T. Kato, K. Nunome, K. Kaneko, H. Saka: Acta Mater. 48 (2000) 2257.10.1016/S1359-6454(00)00037-9Search in Google Scholar

[12] X. Su, N.-Y. Tang, J.-M. Toguri: J. Alloys Compounds 325 (2001) 129.10.1016/S0925-8388(01)01273-7Search in Google Scholar

[13] P.R. Syahbuddin, B. Gleeson Munroe: Mat. Science and Eng. A 264 (1999) 201.10.1016/S0921-5093(98)01089-2Search in Google Scholar

[14] Z. Moser, J. Dutkiewicz, W. Gasior, J. Salawa: Bull. of Alloy Phase Diagrams 6(4) (1985) 330.10.1007/BF02880511Search in Google Scholar

[15] J. Foct, P. Perrot, G. Reumont: Scripta Met. et Mater. 28, 10 (1993) 1195.10.1016/0956-716X(93)90453-YSearch in Google Scholar

[16] A.J. Mac Alister, D.J. Kahan: Bull. Alloy Phase Diagrams 4, 4 (1983) 410.10.1007/BF02868095Search in Google Scholar

[17] M. Zapponi, A. Quiroga, T. Pérez: Surface and Coatings Technology 122 (1999) 18.10.1016/S0257-8972(99)00403-XSearch in Google Scholar

[18] N.-Y. Tang, X. Su, X. Bin Yu: J. Phase Equilibria 24, 6 (2003) 528.10.1361/105497103772084561Search in Google Scholar

[19] P.R. Seré, J.D. Culcasi, C.I. Elsner, A.R. Di Sarli: Surface and Coatings Technology 122 (1999) 143.10.1016/S0257-8972(99)00325-4Search in Google Scholar

[20] P. Perrot, J.-C. Tissier, J.-Y. Dauphin: Z. Metallkde. 83 (1992) 786.Search in Google Scholar

[21] A. Poulon-Quintin, A. Chirazi, G. Reumont, J. Foct, F. Goodwin, in: M.A. Baker (Ed.), Conference Proceedings GALVATECH’04, ‘6th International Conference on Zinc and Zinc Alloy Coated Steel Sheets’ Chicago – A.I.S.T. (2004) 691.Search in Google Scholar

Received: 2005-09-20
Accepted: 2006-01-12
Published Online: 2022-01-12

© 2006 Carl Hanser Verlag, München

Articles in the same Issue

  1. Contents
  2. Extended editorial with anecdotes
  3. Anelastic relaxation and structure of ternary Fe–Al–Me alloys with Me = Co, Cr, Ge, Mn, Nb, Si, Ta, Ti, Zr
  4. Kinetic study of the β → α + γ transformation reaction in a CuZnAl alloy
  5. Calorimetric investigation of the binary Cu–In system
  6. Thermodynamic properties of liquid Cu–In–Zn alloys
  7. Comparing the thermodynamic behaviour of Al(l) + ZrO2(4% Y2O3) and Al(l) + Al2O3
  8. Failure-mode dependence of the strengthening effect in Ti3AlC2/10 vol.% Al2O3 composite
  9. Investigation of Cu-graphite composites prepared by electroforming
  10. Neutron diffraction analysis of martensite ageing in high-carbon FeCMnSi steel
  11. Effect of reinforcement size hybridization on the wear properties of SiCp/Cu Composites
  12. Temperature dependence of lattice mismatch and γ′ volume fraction of a fourth-generation monocrystalline nickel-based superalloy
  13. Novel combinatorial microstructures in Ti-6Al-4V alloy achieved by an electric-current-pulse treatment
  14. The Effect of Ti–B and Sr on the mechanical behaviour of the Zinc–Aluminum-based ZA-12 alloy produced by gravity casting
  15. Determination of retained austenite in multiphase steels by magnetic force microscopy
  16. Filtration resistance during pressure filtration tests of liquid aluminium alloys
  17. Microstructure of a Damascene sabre after annealing
  18. Effect of tin added to the zinc bath on the formation and the microstructure of hot-dip galvanized coatings
  19. Personal
  20. Conferences
  21. Contents
  22. Editorial
  23. Extended editorial with anecdotes
  24. Basic
  25. Anelastic relaxation and structure of ternary Fe–Al–Me alloys with Me = Co, Cr, Ge, Mn, Nb, Si, Ta, Ti, Zr
  26. Kinetic study of the β → α + γ transformation reaction in a CuZnAl alloy
  27. Calorimetric investigation of the binary Cu–In system
  28. Thermodynamic properties of liquid Cu–In–Zn alloys
  29. Comparing the thermodynamic behaviour of Al(l) + ZrO2(4% Y2O3) and Al(l) + Al2O3
  30. Failure-mode dependence of the strengthening effect in Ti3AlC2/10 vol.% Al2O3 composite
  31. Investigation of Cu-graphite composites prepared by electroforming
  32. Neutron diffraction analysis of martensite ageing in high-carbon FeCMnSi steel
  33. Applied
  34. Effect of reinforcement size hybridization on the wear properties of SiCp/Cu Composites
  35. Temperature dependence of lattice mismatch and γ′ volume fraction of a fourth-generation monocrystalline nickel-based superalloy
  36. Novel combinatorial microstructures in Ti-6Al-4V alloy achieved by an electric-current-pulse treatment
  37. The Effect of Ti–B and Sr on the mechanical behaviour of the Zinc–Aluminum-based ZA-12 alloy produced by gravity casting
  38. Determination of retained austenite in multiphase steels by magnetic force microscopy
  39. Filtration resistance during pressure filtration tests of liquid aluminium alloys
  40. Microstructure of a Damascene sabre after annealing
  41. Effect of tin added to the zinc bath on the formation and the microstructure of hot-dip galvanized coatings
  42. Notifications
  43. Personal
  44. Conferences
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