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Effects of Composition Variations on Microstructure and Chemical Durability of West Valley Reference Glass.

Published online by Cambridge University Press:  28 February 2011

A. C. Buechele
Affiliation:
The Vitreous State Laboratory, The Catholic University of America, Washington, D. C. 20064.
X. Feng
Affiliation:
The Vitreous State Laboratory, The Catholic University of America, Washington, D. C. 20064.
H. Gu
Affiliation:
The Vitreous State Laboratory, The Catholic University of America, Washington, D. C. 20064.
I. S. Muller
Affiliation:
The Vitreous State Laboratory, The Catholic University of America, Washington, D. C. 20064.
W. Wagner
Affiliation:
The Vitreous State Laboratory, The Catholic University of America, Washington, D. C. 20064.
I. L. Pegg
Affiliation:
The Vitreous State Laboratory, The Catholic University of America, Washington, D. C. 20064.
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Abstract

Glasses suitable for high-level nuclear waste vitrification must meet a number of requirements including processability, durability, and phase stability. Our new data indicate that the West Valley Reference 5 composition meets these requirements: it is phase stable over the expected range of melter temperatures and residence times, and only minimal (<2 vol %) secondary phase formation, consisting predominantly of iron-group spinels, is expected in the canister cooled glass. Leach tests have shown that the durability of Reference 5 is significantly less sensitive to spinel formation than the earlier Reference 4. However, natural process variations during production will result in a range of glass compositions around the nominal composition. In this paper we report on the effects of composition changes around Reference 5 on the phase stability upon heat treatment and the consequent effects on chemical durability. Since variations in the waste-stream levels of most major components can be accommodated by adjusting the quantities of the glass-forming additives we focus here on a group of components for which this is generally not the case: Ca, Ce, Cr, Mn, Ni, S, and Fe. While many of these components are present at below 1 wt % they could have potentially significant indirect effects on product durability due to enhancement of secondary phase formation. The results provide a data base to support broad (≥300%) tolerance ranges to variation of levels of most of these components. Viscosity data are also reported.

Type
Research Article
Copyright
Copyright © Materials Research Society 1991

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References

REFERENCES

1. Pegg, I. L., Freeborn, W. P., and Macedo, P. B., Waste Management ’88, Ed. Post, R. G., (University of Arizona, AZ, 1988), Vol. 2, p.797.Google Scholar
2. Rykken, L. E., West Valley Nuclear Services Co., Inc., Technical Advisory #60, West Valley, NY (1986).Google Scholar
3. Bickford, D. F. and Jantzen, C. M.. Scientific Basis for Nuclear Waste Management VII, Ed. McVay, G. L. (Elsevier Scientific Publishers, New York, 1984) p. 557.Google Scholar
4. Jantzen, C. M. and Bickford, D. F., Scientific Basis for Nuclear Waste Management VIII, Ed. Jantzen, C. M., Stone, J. A., and Ewing, R. C., (MRS, Pittsburgh, PA, 1986) p. 135.Google Scholar
5. Jantzen, C. M., Bickford, D. F., and Karraker, D. G., Advances in Ceramics, 8 (ACerS, Columbus, OH, 1984) p 30.Google Scholar
6. Buechele, A. C., Feng, X., Gu, H., and Pegg, I. L., Scientific Basis for Nuclear Waste Management XIII, Ed. Oversby, V. M. and Brown, P. W. (MRS, Pittsburgh, PA, 1990), p. 393.Google Scholar
7. Jantzen, C. M. and Bibler, N. E., “Product Consistency Test (PCT) for DWPF Glass,” DPST-87–575, Savannah River Laboratory, July 30, 1987.Google Scholar
8. Adel-Hadadi, M., Macedo, P. B., Mohr, R., Pegg, I. L., et al., DOE/NE/44139–34, Jan. 28, 1987.Google Scholar
9. Schreiber, H.D., J. Geophys. Res., 92, 9225 (1987).Google Scholar
10. Eisenstatt, L. R., West Valley Nuclear Services Co., Inc., Technical Advisory #43, West Valley, NY (1987).Google Scholar
11. Joseph, I., Mathur, A., Sehgal, J., Butts, D., Palmiter, T., and Pye, D., Progress Report, FY88, Alfred University, Alfred, NY (1988).Google Scholar
12. Feng, X., Pegg, I. L., Saad, E., Cucinell, S., and Barkatt, Aa., Ceramic Trans., Nuclear Waste Management III, Ed. Mellinger, G. B. (ACerS, Westerville, OH, 1990) p. 165.Google Scholar
See also Saad, E., Ph. D. Thesis, The Catholic University of America, 1988, unpublished.Google Scholar
13. Feng, X., Pegg, I. L., Barkatt, Aa., Macedo, P. B., Cucinell, S. J., and Lai, S., Nucl. Technol., 85, 334 (1989).Google Scholar
14. Keith, M. L.. J. Am. Ceram. Soc. 37 490 (1954).Google Scholar