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Moving Boundary Model for Leaching of Nuclear Waste Glass

Published online by Cambridge University Press:  26 February 2011

T. Banba
Affiliation:
Department of Environmental Safety Research, Japan Atomic Energy Research Institute, Tokai, Ibaraki, Japan.
T. Murakami
Affiliation:
Department of Environmental Safety Research, Japan Atomic Energy Research Institute, Tokai, Ibaraki, Japan.
H. Kimura
Affiliation:
Department of Environmental Safety Research, Japan Atomic Energy Research Institute, Tokai, Ibaraki, Japan.
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Abstract

The leaching experiments of Soxhlet type have been carried out[l, 2] and on the basis of the results we developed the mathematical leaching model which used one dimensional diffusion and could treat the growth of surface layers. The model adopted the following assumptions: 1) The velocity of the bulk glass-surfacé layers boundary depends on time alone. 2) Some of the diffusing substances are immobilized in the surface layers by an irreversible first-order reaction. 3) A fictitious film exists at the solution-surface layers interface. The fundamental equations were established based on these assumptions and the numerical solutions were obtained by the Crank-Nicholson implicit method. The values of the diffusion coefficient, the reaction rate and the film mass transfer coefficient were obtained by a trial-and-error method. The applicability of the model was confirmed by the fact that the leaching mechanisms deduced from the calculated results were consistent with those mechanisms deduced from the experimental results. The present study showed the proposed model was valid for calculation of the leach rates of waste glasses when surface layers grew during leaching, and the study also indicated which parameters should be measured experimentally to predict the leach rates.

Type
Research Article
Copyright
Copyright © Materials Research Society 1985

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References

1. Murakami, T. and Banba, T., (in press) Nucl. Technol. (1984)Google Scholar
2. Banba, T. and Murakami, T., Submitted to Nucl. Technol.Google Scholar
3. Bradley, D.J., Nucl. Technol., 51, 111 (1980)CrossRefGoogle Scholar
4. Hench, L.L., Clark, D.E. and Yen-Bower, E.L., Nucl. Chem. Waste Manage., 1, 59 (1980)CrossRefGoogle Scholar
5. Clark, D.E., Urwongse, L. and Maurer, C., Nucl. Technol., 56, 212 (1982)CrossRefGoogle Scholar
6. Malow, G. Scientific Basis for Waste Management V, p.25, Lutze, W., Ed., North-Holland, New York (1982)Google Scholar
7. Lutze, W., Malow, G. and Rabe, H., Scientific Basis for Nuclear Waste Management VI, p.37, Brookins, D.G., Ed., North-Holland, New York (1983)Google Scholar
8. Bird, R.B., Stewart, W.E. and Lightfoot, E.N., Transport Phenomena, John Wiley & Sons, Inc., New York (1960)Google Scholar
9. Crank, J., Jl., Q. Mech. appl. Math., 10, 220 (1957)CrossRefGoogle Scholar
10. Doremus, R.H., Glass Science, p.162, John Wiley & Sons, Inc., New York (1973)Google Scholar