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Behavior of simulated hanford slurries during conversion to glass

Published online by Cambridge University Press:  10 February 2011

John G. Darab
Affiliation:
Pacific Northwest National Laboratory [1], Richland, WA 99352
Eve M. Meiers
Affiliation:
Corresponding author: P.O. Box 999, MS K3-59, Richland, WA 99352 Current affiliation: Applied Materials, Santa Clara, CA 95051
Peter A. Smith
Affiliation:
Current affiliation: Motorola Flat Panel Display Division, Tempe, AZ 85248
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Abstract

Mixtures of simulated Hanford low-activity aqueous waste and glass precursor additives were heat treated at various temperatures up to 1000°C and characterized using X-ray diffraction, X-ray fluorescence spectroscopy, scanning electron microscopy, gas chromatography mass spectroscopy, and inductively coupled plasma – mass spectroscopy. It was found after heating the simulant mixture up to 700°C, the majority of the sodium nitrite present in the original waste reacted with the silica and perhaps boron species in the additives to form C– and N-containing gases, oxygen gas, and lower melting phases which contributed to the observed batch volume expansion beginning at these temperatures. Elemental analyses of minor components in the simulant mixture showed that I, Cl, and S exhibited significant losses during heating, presumably due to volatilization or entrainment. For the case of I, nearly 90% on an elemental basis was lost from the simulant mixture after processing to 1000°C, whereas Re exhibited less than 40% loss.

Type
Research Article
Copyright
Copyright © Materials Research Society 1999

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References

REFERENCES

1. Pacific Northwest National Laboratory is operated for the United States Department of Energy by the Battelle Memorial Institute under contract DE-AC06-76RLO 1830.Google Scholar
2. Darab, J. G. and Smith, P. A., Chem. Mater. 8, 1004 (1996).Google Scholar
3. Smith, P. A., Vienna, J. D., and Hrma, P. J. Mater. Res. 10, 2137 (1995).Google Scholar
4. Paul, A., Chemistry of Glass; 2nd edition; Chapman & Hall: New York, 1982; pp. 157178.Google Scholar
5. Abe, O., Utsunomiya, T., and Hoshino, Y., Chem. Soc. of Japan 56, 428 (1983).Google Scholar