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Diffusion of Plutonium(IV) in Dense Bentonite-Based Materials

Published online by Cambridge University Press:  26 February 2011

H. D. Sharma
Affiliation:
Guelph-Waterloo Centre for Graduate Work in Chemistry, University of Waterloo, Waterloo, Ontario. Canada N2L 3G1
D. W. Oscarson
Affiliation:
Atomic Energy of Canada Limited, Whiteshell Nuclear Research Establishment, Pinawa, Manitoba, Canada ROE 1LO
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Abstract

Diffusion coefficients were measured (Dm) for Pu(IV) in dense mixtures of bentonite and sand (soil) saturated with a synthetic groundwater solution (SGW) at a pH of 8 and at 25°C. The Dm values were approximately 10-14 m2/s. The clay content of the soil, in the range of 10 to 50%, did not have a significant effect on Dm. The Dm values were also compared with diffusion coefficients calculated (Dc) from a model based on a distribution coefficient. Fair agreement between Dm and Dc for Pu(IV) was found for the soils and SGW examined here. It is unlikelv. however, that the model will accurately estimate Dm for Pu, which has a complex solution and sorption chemistry, over a wide range of conditions.

Type
Research Article
Copyright
Copyright © Materials Research Society 1989

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References

REFERENCES

1. Hancox, W.T., Proc. Second Int. Conf. on Radioactive Waste Management, (Canadian Nuclear Society, Toronto, 1986) p. 1.Google Scholar
2. Robin, M.J.L., Gillham, R.W., and Oscarson, D.W., Soil Sci. Soc. Am. J. 51, 1102 (1987).CrossRefGoogle Scholar
3. Quigley, R.M., Atomic Energy of Canada Limited Report, AECL-7827 (1984).Google Scholar
4. Robin, M.J.L., Gillham, R.W.. and Oscarson, D.W., Atomic Energy of Canada Limited Technical Record, TR-424 (1988).Google Scholar
5. Frape, S.K., Fritz, P., and McNutt, R.H., Geochim. Cosmochim. Acta 48, 1617 (1984).CrossRefGoogle Scholar
6. Cleveland, J.M., The Chemistry of Plutonium. (Gordon and Breach Publishers, New York, 1970), p. 54.Google Scholar
7. Gillham, R.W.. Robin, M.J.L., Dytynyshyn, D.J., and Johnston, H.M., Can. Geotech. J. 21, 541 (1984).CrossRefGoogle Scholar
8. Crank, J., The Mathematics of Diffusion. (Oxford University Press, Oxford, England, 1956) p. 14.Google Scholar
9. Bondietti, E.A., Reynolds, S.A., and Shanks, M.H., in Transuranium Nuclides in the Environment. (Published by Int. Atomic Energy Agency, Vienna, 1976), p. 273.Google Scholar
10. Allard, B., Rydberg, J., Kipatsi, H., and Torstenfeit, B., in Radioactive Waste in Geologic Storage, edited by Fried, S. (American Chemical Society Symposium Series 100, 1979). p. 47.CrossRefGoogle Scholar
11. Li, Y.H. and Gregory, S., Geochim. Cosmochim. Acta 38703 (1974).Google Scholar
12. Nowak, E., in Scientific Basis for Nuclear Waste Management VII, edited by McVay, G.L. (Elsevier Science Publishers, New York. 1984), p. 59.Google Scholar
13. Allard, B. and Olofsson, U., SKB/KBS Technical Report TR-79–28 (1983).Google Scholar
14. Miller, C.N., in Scientific Basis for Nuclear Waste Management VI. edited by Brookins, D.G. (Elsevier Science Publishers, New York, 1982), p. 481.Google Scholar