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Migration of Plutonium in a Simulated Engineered Barrier System Consisting of Waste Glass and Ompacted Bentonite

Published online by Cambridge University Press:  10 February 2011

Y. Inagaki
Affiliation:
Kyushu Univ., Dept. of Nucl. Eng., Fukuoka 812–8581, Japan
R. Saito
Affiliation:
Kyushu Univ., Dept. of Nucl. Eng., Fukuoka 812–8581, Japan
H. Furuya
Affiliation:
Kyushu Univ., Dept. of Nucl. Eng., Fukuoka 812–8581, Japan
K. Idemitsu
Affiliation:
Kyushu Univ., Dept. of Nucl. Eng., Fukuoka 812–8581, Japan
T. Arima
Affiliation:
Kyushu Univ., Dept. of Nucl. Eng., Fukuoka 812–8581, Japan
T. Banba
Affiliation:
Japan Atomic Energy Research Institute, Tokai Research Establish., Ibaraki 319–1195, Japan
T. Maeda
Affiliation:
Japan Atomic Energy Research Institute, Tokai Research Establish., Ibaraki 319–1195, Japan
S. Matsumoto
Affiliation:
Japan Atomic Energy Research Institute, Tokai Research Establish., Ibaraki 319–1195, Japan
Y. Tamura
Affiliation:
Japan Atomic Energy Research Institute, Tokai Research Establish., Ibaraki 319–1195, Japan
S. Kikkawa
Affiliation:
Japan Atomic Energy Research Institute, Tokai Research Establish., Ibaraki 319–1195, Japan
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Abstract

In a simulated engineered barrier system consisting of a simulated HLW glass doped with Pu, a compacted bentonite and water under reducing conditions, migration tests of Pu from the glass into the bentonite through water were performed. The following results were obtained: (1) The presence of bentonite enhances the glass dissolution while it has no remarkable influence on the concentration of Pu dissolved species in the solution. (2) Only a small part of the leached Pu, which may correspond to the dissolved species, can diffuse into the bentonite with the apparent diffusion coefficient of 3×10−14m2/s. (3) Interactions between the glass and the bentonite have no remarkable influence on the diffusion of Pu.

Type
Research Article
Copyright
Copyright © Materials Research Society 1999

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References

REFERENCES

[1] “Nuclear Waste Glass Dissolution: Mechanism, Model and Application”, Technical Report - JSS Project Phase IV 87-02, edited by SKB, Stockholm, Sweeden(1987).Google Scholar
[2] Inagaki, Y., Furuya, H. et al., J. Nucl. Mater., 208(1994)27.Google Scholar
[3] Muurinen, A., Rantanen, J., et al., Mat.Res.Soc.Symp.Proc., Vol.50(1986)617.Google Scholar
[4] Sato, H., Ashida, T et al., Mat.Res.Soc.Symp.Proc., Vol.294(1993)403.Google Scholar
[5] Ashida, T., Kohara, Y. et al., Radiochimica Acta 66/67(1994)359.Google Scholar
[6] Tsukamoto, M., Ohe, T. et al., Mat.Res.Soc.Symp.Proc., Vol.353(1995)291.Google Scholar
[7] Lemmens, K., et al., “The Corrosion of Nuclear Waste Glasses in a Clay Environment: Mechanisms and Modellings”, Final Report 1991-1995, SCKCEN, R-3092, 1996.Google Scholar
[8] “Testing and Modeling of the Corrosion of Simulated Nuclear Waste Glass Powders in a Waste Package Environment”, Technical Report - JSS Project Phase IV 88-02, edited by SKB, Stockholm, Sweeden(1988).Google Scholar
[9] Idemitsu, K., Tachi, Y. et al.,Mat.Res.Soc.Symp.Proc., Vol.506(1998)351.Google Scholar
[10] Sudo, T. and Shimoda, S., Minerals Sci. Eng., 9(1977)3.Google Scholar
[11] Velde, B., “Clay Minerals: A Physico-Chemical Explanation of their Occurance”, Elsevier, Amsterdam (1985).Google Scholar
[12] Kimpe, C.De et al., Clays Clay Miner., 29(1881)446.Google Scholar
[13] Iglesia, A. La and Gastuche, M.C., Clays Clay Miner., 26(1878)397.Google Scholar
[14] Buck, E.C., Bates, J.K., et al., Mat.Res.Soc.Symp.Proc.Vol.294(1993)199.Google Scholar
[15] Fortner, J.A. and Bates, J.K., Mat.Res.Soc.Symp.Proc.Vol.412(1996)205.Google Scholar
[16] Rai, D., Radiochimica.Acta, 35(1984)97.Google Scholar
[17] Kim, J.I. and Kanellakopulos, B., Radiochimica.Acta, 48(1989)145.Google Scholar
[18] Inagaki, Y., Sakata, H. et al., Mat.Res.Soc.Symp.Proc., Vol.506(1998)177.Google Scholar
[19] PNC TN1410 96-071, p162, PNC, Japan(1996).Google Scholar
[20] Miyahara, K., Ashida, T. et al., Radiochimica.Acta, 52/53(1991)293.Google Scholar
[21] Kozaki, T., Fujishima, A. et al., Nucl.Technol., 121(1998)63.Google Scholar
[22] Kuroda, Y., Idemitsu, K. et al., Mat.Res.Soc.Symp.Proc.Vol.465(1997)909.Google Scholar