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Experimental Investigation of the 450 and 600 °C Sections of the Ti-V-Zn System

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The 450 and 600 °C isothermal sections of the Ti-V-Zn ternary system were constructed based on examination of equilibrated alloys by x-ray diffraction and Scanning electron microscopy coupled with Energy dispersive spectroscopy. A continuous solid solution phase (Ti,V)Zn3 was clearly identified. Its lattice parameter increased with the increasing of the Ti content. (Ti,V)Zn3 is in equilibrium with all phases except α-Ti and Ti2Zn at 450 and 600 °C. Four Ti-Zn intermetallic compounds, TiZn16, Ti3Zn22, TiZn3 and TiZn, and a V-Zn compound V4Zn5 were observed in the ≥50 at.%Zn region. The solubility of Ti in V4Zn5 is around 0.2 at.% and that of V in TiZn16, Ti3Zn22 and TiZn at 450 °C is 0.6, 1.3 and 2.6 at.%, respectively.

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References

  1. A.R. Marder, The Metallurgy of Zinc-Coated Steel, Prog. Mater. Sci., 2000, 45, p 191-271

    Article  Google Scholar 

  2. J. Zervoudis, G. Anderson, A Review of Bath Alloy Additives and their Impact on the Quality of the Galvanized Coating, in 6th Asia Pacific General Galvanizing Conf., 2005, p 1–17

  3. V. Raghavan, Fe-Ni-Zn (Iron-Nickel-Zinc), J. Phase Equilib. Diff., 2007, 28, p 394

    Article  Google Scholar 

  4. X. Tang, F. Yin, X. Wang, J. Wang, X. Su, and N.-Y. Tang, The 450 °C Isothermal Section of the Zn-Fe-Ti System, J. Phase Equilib. Diff., 2007, 28, p 355-361

    Article  Google Scholar 

  5. C. Wu, X. Su, D. Liu, X. Wang, F. Yin, Z. Zhu, and Z. Li, Experimental Investigation of the Zn-Fe-V System at 450 °C, Int. J. Mater. Res., 2010, 101, p 1476-1483

    Article  Google Scholar 

  6. G.P. Vassilev, E.S. Dobrev, and J.-C. Tedenac, Phase Diagram of the Sn-Zn-Ti System, J Alloys Compd., 2006, 407, p 170-175

    Article  Google Scholar 

  7. H. Peng, X. Su, Z. Li, X. Li, J. Wang, Y. Liu, and H. Tu, The 620 and 800 °C Isothermal Sections of the Zn-Fe-Cu Ternary System, J Alloys Compd., 2012, 516, p 9-15

    Article  Google Scholar 

  8. A. Kostov and D. Živković, Thermodynamic Analysis of Alloys Ti-Al, Ti-V, A-V and Ti-Al-V, J Alloys Compd., 2008, 460, p 164-171

    Article  Google Scholar 

  9. G.J. Zhou, J.G. Tang, Y. Zhou, W.K. An, and A.H. Cai, Phase Equilibria in the Co-Ti-V system at 873 K, J Alloys Compd., 2014, 602, p 49-52

    Article  Google Scholar 

  10. C. Wu, X. Su, D. Liu, X. Wang, J. Wang, Z. Li, and H. Peng, The V-Zn Binary System: New Experimental Results and Thermodynamic Assessment, CALPHAD, 2011, 35, p 403-410

    Article  Google Scholar 

  11. M.G. Chasanov, R. Schablaske, P.D. Hunt, and B. Tani, The Zinc-Vanadium Phase Diagram, Trans. Metall. Soc. AIME, 1963, 227, p 485-488

    Google Scholar 

  12. K. Chang, Y. Du, W. Sun, H. Xu, and L. Zhou, Thermodynamic Assessment of the V-Zn System Supported by Key Experiments and First-Principles Calculations, CALPHAD, 2010, 34, p 75-80

    Article  Google Scholar 

  13. P. Pietrokowsky, A Cursory Investigation of Intermediate Phases in the Systems Ti-Zn, Ti-Hg, Zr-Zn, Zr-Cd, and Zr-Hg by X-ray Powder Diffraction Methods, J. Metals, 1954, 6, p 219-226

    Google Scholar 

  14. W. Heine and U. Zwicker, Contribution on the Constitution of Zn-Cu-Ti Alloys, Z. Metallkd., 1962, 53, p 386-388

    Google Scholar 

  15. Z. Zermout, M. Durand-Charre, G. Kapelski, and B. Baudelet, Phase Equilibria in the Zn-rich Corner of the Zn-Cu-Ti System, Z. Metallkd., 1996, 87, p 274-279

    Google Scholar 

  16. E. Pelzel, The Structure of Zn-Cu-Ti Alloys, Metall, 1961, 15, p 881-883

    Google Scholar 

  17. K. Schubert, K. Frank, R. Gohle, A. Maldonado, H. Meissner, A. Raman, and W. Rossteutscher, Some Structural Data of Metallic Phases. Part VIII, Naturwissenschaften, 1963, 50, p 41

    Article  ADS  Google Scholar 

  18. G.P. Vassilev, X.J. Liu, and K. Ishida, Reaction Kinetics and Phase Diagram Studies in the Ti-Zn System, J Alloys Compd., 2004, 375, p 162-170

    Article  Google Scholar 

  19. S. Yang, X. Su, J. Wang, F. Yin, Z. Li, H. Tu, and H. Peng, The Zn-rich Corner of the Zn-Al-Ti System at 723 K, J Alloys Compd., 2010, 499, p 194-199

    Article  Google Scholar 

  20. Q. Luo, Q. Li, J.-Y. Zhang, S.-L. Chen, and K.-C. Chou, Experimental Investigation and Thermodynamic Optimization of the Al–Zn–Ti System in the Al-rich Corner, Intermetallics, 2013, 33, p 73-80

    Article  Google Scholar 

  21. H. Tu, Q. Zhao, Y. Liu, J. Wang, X. Su, and S. Liu, The 450 and 600 °C Isothermal Sections of the Zn-Ti-Si System, J Alloys Compd., 2014, 616, p 594-600

    Article  Google Scholar 

  22. X.-A. Chen, W. Jeitschko, M.E. Danebrock, C.B.H. Evers, and K. Wagner, Preparation, Properties, and Crystal Structures of Ti3Zn22 and TiZn16, J Solid State Chem., 1995, 118, p 219-226

    Article  ADS  Google Scholar 

  23. W. Rossteutscher and K. Schubert, Constitution of Vanadium Zinc Alloy System, Z. Metallkd., 1964, 55, p 617-618

    Google Scholar 

  24. M. Saillard, G. Develey, C. Becle, J. Moreau, and D. Paccard, The Structure of TiZn16, Acta Crystal. B, 1981, 37, p 224-226

    Article  Google Scholar 

  25. T. Massalski, CD ROM: Binary Alloy Phase Diagrams, ASM International, Geauga, 1996

    Google Scholar 

  26. Z. Wendorff and W. Piotrowski, Phases of the Type AuCu3 in Zn-metal Systems, Hutnik, 1964, 31, p 246-249

    Google Scholar 

  27. G.P. Vassilev, Contribution to the Zinc-Rich side of the Ti-Zn System, Z. Metallkd., 2004, 95(9), p 813-817

    Article  Google Scholar 

  28. T. Gloriant, G. Reumont, and P. Perrot, The Fe-Zn-Ti System at 450 °C, Z. Metallkd., 1997, 88, p 539-544

    Google Scholar 

  29. F. Laves and H. Wallbaum, Zur Kristallchemie von Titan-Legierungen, Naturwissenschaften, 1939, 27, p 674-675

    Article  ADS  Google Scholar 

  30. X. Su, N.-Y. Tang, and J.M. Toguri, 450 °C Isothermal Section of the Fe-Zn-Si Ternary Phase Diagram, Can. Metall. Q, 2001, 40, p 377-384

    Article  Google Scholar 

  31. B. Grushko, W. Kowalski, and M. Surowiec, On the Constitution of the Al-Co-Fe Alloy System, J Alloys Compd., 2010, 491, p L5-L7

    Article  Google Scholar 

  32. Y.M. Wang, H.S. Liu, F. Zheng, and Z.P. Jin, The Isothermal Section of the Co-Ni-Nb Ternary System at 1123 K Determined by Diffusion Triple Technique, J Alloys Compd., 2008, 454, p 501-505

    Article  Google Scholar 

  33. Jade5.0, XRD Pattern Processing Materials Data Inc. 1999

  34. C. Wu, X. Su, Y. Liu, H. Peng, J. Wang, and H. Tu, Experimental Investigation of Phase Equilibria in the Sn-V-Zn System at 450 and 600 °C, J Alloys Compd., 2013, 567, p 115-121

    Article  Google Scholar 

Download references

Acknowledgments

The authors gratefully acknowledge the financial support from National Natural Science Foundation of China (Nos. 51271040 and 51301028), and the Priority Academic Program Development of Jiangsu Higher Education Institutions.

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Correspondence to Changjun Wu.

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Tu, H., Wu, C., Liu, Y. et al. Experimental Investigation of the 450 and 600 °C Sections of the Ti-V-Zn System. J. Phase Equilib. Diffus. 37, 651–657 (2016). https://doi.org/10.1007/s11669-016-0496-5

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  • DOI: https://doi.org/10.1007/s11669-016-0496-5

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