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Structure and decomposition behaviour of rapidly solidified Al-Fe alloys

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Abstract

The structure and decomposition behaviour of rapidly solidified Al-5, 10 and 15 at% Fe alloys have been investigated by detailed transmission electron microscopy and differential scanning calorimetry. Rapid solidification produces a variety of metastable phases: microquasicrystalline, decagonal, Al m Fe, Al6Fe and Al13Fe4, in order of increasing thermodynamic stability. The rapidly solidified microstructure depends upon the alloy composition and cooling rate. Primary and cellular particles of the microquasicrystalline phase are preferred at higher cooling rates, and primary or eutectic particles of the Al m Fe phase are preferred at lower cooling rates. With increasing iron content, the microquasicrystalline phase is replaced with primary particles of the decagonal phase. After annealing at moderate temperatures, the microquasicrystalline phase in Al-5 and 10 at% Fe decomposes into Al m Fe and Al6Fe, and the microquasicrystalline phase in Al-15 at% Fe decomposes into Al m Fe. After annealing at higher temperatures, the Al m Fe, Al6Fe and decagonal phases then decompose into stable Al13Fe4.

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References

  1. H. Jones,Mater. Sci. Eng. 5 (1969/1970) 1.

    Google Scholar 

  2. W. J. Boettinger, L. Bendersky andF. Early,Met. Trans. 17A (1986) 781.

    Google Scholar 

  3. M. Chandrasekaren, Y. P. Lin, R. Vincent andG. Staniek,Scripta Metall. 22 (1988) 797.

    Google Scholar 

  4. P. J. Shurer, B. Koopmano andF. Van Der Wonde,Solid State Commun. 59 (1986) 619.

    Google Scholar 

  5. R. M. K. Young andT. W. Clyne,Scripta Metall. 15 (1981) 1211.

    Google Scholar 

  6. K. K. Fung, C. Y. Yang, Y. Q. Zhou, J. G. Zhao, W. S. Zhan andB. C. Shen,Phys. Rev. Lett. 56 (1986) 2060.

    PubMed  Google Scholar 

  7. C. M. Adam, V. R. V. Ramanan andD. J. Skinner, in “Undercooled Alloy Phases”, edited by E. W. Collings and C. C. Tioch (AIME, Warrendale, 1986) p. 89.

    Google Scholar 

  8. R. A. Dunlap, D. J. Lloyd, I. A. Christie, G. Stronik andZ. M. Stadunik,J. Phys. F Met. Phys. 18 (1988) 1329.

    Google Scholar 

  9. I. R. Hughes andH. Jones,J. Mater. Sci. 11 (1976) 1781.

    Google Scholar 

  10. C. M. Adam andL. M. Hogan,J. Austral. Inst. Met. 17 (1972) 81.

    Google Scholar 

  11. M. H. Jacobs, A. G. Dogget andM. J. Stowell,J. Mater. Sci. 9 (1974) 1631.

    Google Scholar 

  12. D. H. Kim, PhD thesis, Oxford University, (1989).

  13. J. D. Fitz Gerald, R. L. Withers, A. M. Stewart andA. Calka,Philos. Mag. B 58 (1988) 15.

    Google Scholar 

  14. A. G. Gillen andB. Cantor,Acta Metall. 33 (1985) 1813.

    Google Scholar 

  15. B. Bewlay andB. Cantor,Int. J. Rapid Solid. 2 (1986) 107.

    Google Scholar 

  16. W. T. Kim andB. Cantor,Scripta Metall. 24 (1990) 633.

    Google Scholar 

  17. X. D. Zou, K. K. Fung andK. H. Kuo,Phys. Rev. B 35 (1987) 4526.

    Google Scholar 

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Kim, D.H., Cantor, B. Structure and decomposition behaviour of rapidly solidified Al-Fe alloys. J Mater Sci 29, 2884–2892 (1994). https://doi.org/10.1007/BF01117597

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