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Preparation and chemical analysis of high purity iron-zinc alloys

Published online by Cambridge University Press:  03 March 2011

R.G. Grant
Affiliation:
Department of Physics, Old Dominion University, Norfolk, Virginia 23529
P.S. Cook
Affiliation:
Department of Physics, Old Dominion University, Norfolk, Virginia 23529
D.C. Cook
Affiliation:
Department of Physics, Old Dominion University, Norfolk, Virginia 23529
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Abstract

We have produced and chemically analyzed a series of high purity iron-zinc alloys with iron concentrations in the range 4-27 wt. %. The technique involved slow diffusion of high purity zinc with small particle iron powder. We produced alloys within the four main iron-zinc phases, Zeta, Delta, Gamma-1, and Gamma to aid in the identification of the intermetallic phases formed in commercially produced galvanneal steel coatings. The diffusion technique produces iron-zinc alloys which are suitable as instrument calibration standards for galvanneal producers and users. A chemical titration technique which measures iron concentration to within 0.5 wt. % was also refined. In determining the bulk iron concentrations of the samples, we have compared the accuracy of the wet chemical technique with Induction Coupled Plasma spectroscopy. Homogeneity was measured using an electron microprobe and a scanning transmission electron microscope. The data show that samples are homogeneous to greater than 98% of the mean iron concentration.

Type
Articles
Copyright
Copyright © Materials Research Society 1995

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References

REFERENCES

1Townsend, H. E., Allegra, L., Dutton, R. J., and Kriner, S. A., Materials Performance 25, 36 (1986).Google Scholar
2Baskin, G. F., van Loo, F.J., and Rieck, G. D., Z. Metallkde. 68, 359 (1977).Google Scholar
3Gellings, P. J., deBree, E.W., and Gierman, G., Z. Metallkde. 70, 312 (1979).Google Scholar
4Cook, D. C., Mössbauer Analysis of the Zinc-Iron Phases on Galvannealed Steel, Technical Report #ODUDCC0289, 1989.Google Scholar
5Cook, D. C., Tuszynski, R. S., and Townsend, H. E., Hyperfine Interactions 54, 781 (1990).CrossRefGoogle Scholar
6Cook, D. C., Mössbauer Effect Study of Four Metal Powder Galvanneal Standards, Technical Report #ODUDCC0191, 1991.Google Scholar
7Cook, D. C., Mössbauer Effect Analysis of the Zinc-Iron Phases on Galvannealed Steel, Technical Report #ODUDCC0291, 1991.Google Scholar
8Cook, D. C., Mössbauer Effect Study of Galvanneal Steel Coating Fracture Surfaces, Technical Report #ODUDCC0192, 1992.Google Scholar
9Cook, D. C. and Grant, R. G., Identification of the Iron-Zinc Phases in Galvanneal Steel Coatings by Mössbauer Spectroscopy and X-Ray Diffraction. Phase I: Characterization of the Fe-Zn Inter-metallic Phases, Technical Report #ODUDCC0193, 1993.Google Scholar
10Cook, D. C. and Grant, R. G., Identification of the Iron-Zinc Phases in Galvanneal Steel Coatings by Mössbauer Spectroscopy and X-Ray Diffraction. Phase II: Construction and Testing of a Coating Analyzer, Technical Report #ODUDCC0294, 1994.Google Scholar
11Townsend, H. E., Johnson, G. L., Grant, R. G., and Cook, D. C., Scripta Metall. et Mater. 31, 1145 (1994).Google Scholar
12Grant, R. G. and Cook, D. C., Hyperfine Interactions 94, 2309 (1994).Google Scholar
13Kubaschewski, O., Iron-Binary Phase Diagrams (Springer-Verlag, Berlin, 1982), p. 86.Google Scholar
14A-131 Electrolytic Iron Micropowder: SCM Metal Products, Inc., Research Triangle Park, NC.Google Scholar
15AS-081 Zinc Powder: OBRON Atlantic Corporation, Painesville, OH.Google Scholar
16ICP standards: Inorganic Ventures Inc., Lakewood, NJ.Google Scholar
17Harris, W. E. and Kratochvil, B., Chemical Separations and Measurement (Saunders Pub. Co., London, 1974), p. 77.Google Scholar
18Fisher, R. B. and Peters, D. G., Basic Theory and Practice of Quantitative Chemical Analysis (Saunders Pub. Co., London, 1968) p. 536.Google Scholar
19Furdanowicz, W. A. and Downey, K. E., J. Micros. 174, 55 (1994).CrossRefGoogle Scholar