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Aqueous leaching of high burnup UO2 fuel under hydrogen conditions

Published online by Cambridge University Press:  06 March 2018

Anders Puranen*
Affiliation:
Studsvik Nuclear, Nyköping, Sweden
Olivia Roth
Affiliation:
Studsvik Nuclear, Nyköping, Sweden
Lena Z. Evins
Affiliation:
The Swedish Nuclear Fuel Waste Management Company, Stockholm, Sweden
Kastriot Spahiu
Affiliation:
The Swedish Nuclear Fuel Waste Management Company, Stockholm, Sweden
*
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Abstract

Leaching results on fragments of high burnup (65 MWd/kgU) UO2 fuel from a commercial pressurized water reactor are presented. The experiment was performed in simplified granitic groundwater under a hydrogen pressure of up to 5 MPa, representing conditions in a water intrusion scenario for a Swedish KBS-3 design spent nuclear fuel repository. The freshly crushed fragments were pre-washed for 6 days to remove pre-oxidized matrix and part of the instant release fraction of the radionuclide inventory, and then transferred to an autoclave for leaching under hydrogen conditions. Following an initial release of U attributed to dissolution of a pre-oxidized fuel layer caused by the aerated handling mainly during the transfer from pre-washing to autoclave, the U concentration decreased with time to levels of 2-5x10-9 M, which corresponds, approximately, to the solubility of amorphous UO2. The release of radionuclides such as Cs and Sr gradually declined indicating a transition to inhibition of the fuel matrix dissolution.

Type
Articles
Copyright
Copyright © Materials Research Society 2018 

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References

Puranen, A., Granfors, M., Ekeroth, E., Spahiu, K., (2016) MRS Advances, 1(62), 41694175. doi:10.1557/adv.2017.205CrossRefGoogle Scholar
Fors, P., Carbol, P., WinkelS, Van S, Van, Spahiu, K., (2009) J. Nucl. Mater. 394, 18.CrossRefGoogle Scholar
Guillamont, R. et al. , Update on the chemical thermodynamics of U, Np, Pu, Am and Tc, OECD NEA, Elsevier 2003Google Scholar
Loida, A., Metz, V., Kienzler, B., and Geckeis, H., (2005) J. Nucl. Mat. 346 2431.CrossRefGoogle Scholar
Spahiu, K., Cui, D., Lundström, M., (2004) Radiochimica Acta. 92 625629.CrossRefGoogle Scholar
Loida, A., Gens, R., Bube, C., Lemmens, K., Cachoir, C., Mennecart, T., Kienzler, B., (2012) MRS Symp. Proc. Vol. 1475, 119124.CrossRefGoogle Scholar
Zwicky, H-U., Low, J., Ekeroth, E., SKB Technical Report TR-11-03. 2011Google Scholar
SKB Technical Report TR-10-52. 2012Google Scholar
Lemmens, K. et al. . (2017) J. Nucl. Mater. 484 307323.CrossRefGoogle Scholar