Hostname: page-component-586b7cd67f-t7fkt Total loading time: 0 Render date: 2024-11-29T07:31:27.830Z Has data issue: false hasContentIssue false

Crandallites and Coffinite: Retardation of Nuclear Reaction Products at the Bangombé Natural Fission Reactor

Published online by Cambridge University Press:  10 February 2011

K.A. Jensen
Affiliation:
University of Aarhus, Department of Earth Sciences, Aarhus, Denmark, [email protected] University of Michigan, Department of Nuclear Engineering and Radiological Sciences & Department of Geological Sciences, Ann Arbor, Michigan, USA
J. Janeczek
Affiliation:
University of Silesia, Faculty of Earth Sciences, Sosnoweic, Poland
R.C. Ewing
Affiliation:
University of Michigan, Department of Nuclear Engineering and Radiological Sciences & Department of Geological Sciences, Ann Arbor, Michigan, USA
P. Stille
Affiliation:
Centre National de la Recherche Scientifique, Centre de Geochimie de la Surface, Strasbourg Cedex, France
F. Gauthier-Lafaye
Affiliation:
Centre National de la Recherche Scientifique, Centre de Geochimie de la Surface, Strasbourg Cedex, France
S. Salah
Affiliation:
Centre National de la Recherche Scientifique, Centre de Geochimie de la Surface, Strasbourg Cedex, France
Get access

Abstract

Various REE-Sr-(Pb)-crandallites, uraninite, and coffinite in the near-field of the 2 Ga old super-gene-altered Bangombé U-deposit and its natural fission reactor (RZB) have been examined. The crandallite minerals may have formed during syncriticality host-rock alteration, continous alteration of phosphates, episodic Pb-loss and/or supergene weathering. Coffinitization with P2O5 and SO4-substitution has occurred immediately below RZB and resulted in extensive loss of U (≤ 46%) and enrichment of Ce (≤ 190%) and Nd (≤ 780%). Additional loss of U during coffinitization also may have occurred due to dissolution. Current alteration under oxidizing conditions has resulted in partial dissolution of uraninite and coffinite and the formation of uranyl phases. Despite supergene alteration, the hydrogeochemistry (3.09 ppt U [235U/238U = 0.7012 to 0.7019%], 4.96 ppt Ce, and 1.92 ppt Nd) suggests a remarkable retardation of lanthanides and depleted uranium by REE-Sr-(Pb)-crandallites, uraninite, coffinite, and uranyl phases at RZB.

Type
Research Article
Copyright
Copyright © Materials Research Society 2000

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

REFERENCES

[1] Janeczek, J. and Ewing, R. C., in Scientific Basis for Nuclear Waste Management XV, edited by Sombret, C. (Mater Res. Symp. Proc., 257, 1992), p. 497504.Google Scholar
[2] Janeczek, J. and Ewing, R.C., Geochim Cosmochim Acta, 59, p. 19171931 (1995).Google Scholar
[3] Fayek, M. and Kyser, T.K., in Uranium: mineralogy, geochemistry, and the environment, edited by Burns, P.C. and Finch, R., Rev. in Min, 38, p. 181220 (1999).Google Scholar
[4] Jensen, K.A. and Ewing, R.C., in Oklo Working Group, Proceedings of the second EC-CEA workshop on the Oklo-natural analogue Phase II project held in Helsinki, Finland, from 16-18 June 1998, edited by Louvat, D., Michaud, V., and Marevic, H. von (Nucl. Sci. and Tech., EUR 19116 EN, 1999), p. 6191.Google Scholar
[5] Dymkov, Y., Holliger, P., Pagel, M., Gorshkov, A., Artyukhina, A., Miner. Dep., 32, p. 617620 (1997).Google Scholar
[6] Janeczek, J. and Ewing, R.C., Am. Min., 81, p. 12631269 (1996).Google Scholar
[7] Jensen, K.A., Ewing, R.C., Gauthier-Lafaye, F., in Scientific Basis for Nuclear Waste Management XX, edited by Gray, W. and Triay, I., (Mater. Res. Soc. Proc., 465, 1997), p. 12091218.Google Scholar
[8] Jensen, K.A. and Ewing, R.C., in OKLO Working Group - Proceedings of the first EC-CEA workshop on the Oklo-natural analogue Phase II project held in Sitjes, Spain, from 18 to 20 June 1997, edited by Louvat, D. and Davies, C. (Nucl. Sci. and Tech., EUR 18314 EN, 1998), p. 139159.Google Scholar
[9] Janeczek, J. and Ewing, R.C., Min. Mag., 60, p. 665669 (1996).Google Scholar
[10] Bros, R., Gauthier-Lafaye, F., Larque, P., Samuel, J., and Stille, P., in Scientific Basis for Nuclear Waste Management XVIII - Part 2, edited by Murakami, T. and Ewing, R.C. (Mater. Res. Soc. Proc., 353, 1995), p. 11871194.Google Scholar
[11] Janeczek, J., Ewing, R.C., Oversby, V.M., Werme, L.O., J. Nucl. Mat., 238, p.121130 (1996).Google Scholar
[12] Gauthier-Lafaye, F., Holliger, P., Blanc, P.L., Geochim Cosmochim Acta, 60, p. 48314852.Google Scholar
[13] Bros, R., Andersson, P., Roos, P., Claesson, S., Holm, E., Smellie, J., in OKLO Working Group - Proceedings of the first EC-CEA workshop on the Oklo-natural analogue Phase II project held in Sitjes, Spain, from 18 to 20 June 1997, edited by Louvat, D. and Davies, C. (Nucl. Sci. and Tech., EUR 18314 EN, 1998), p. 187195.Google Scholar
[14] Bros, R., Ohnuki, T., and Yanase, N., in Geol. Soc. of Am. Annual Meeting and Exposition, October 25-28, 1999, Denver, Colorado, Abstracts with Programs, p. A68. (1999).Google Scholar
[15] Cui, D., private communication.Google Scholar
[16] Janeczek, J., Hidaka, H., , J., , Ewing, Gauthier-Lafaye, F., Jensen, K.A., Lapot, W., , W., Salah, S., (in prep.).Google Scholar
[17] Perez-del-Villar, L., S., J., , Cozar, Pardillo, J., Pelayo, M., Quijido, A.J., Labajos, M.A., in Oklo Working Group, Proceedings of the second EC-CEA workshop on the Oklo-natural analogue Phase II project held in Helsinki, Finland, from 16-18 June 1998, edited by Louvat, D., Michaud, V., and Marevic, H. von (Nucl. Sci. and Tech., EUR 19116 EN, 1999), p. 141162.Google Scholar
[18] Matheiu, R., Zetterström, L., Cuney, M., Gauthier-Lafaye, F., Chem. Geol. (submitted).Google Scholar
[19] Perez-del-Villar, L., S., J., , Cozar, Pardillo, J., Pelayo, M., Labajos, M.A., in Oklo Working Group, Proceedings of the second EC-CEA workshop on the Oklo-natural analogue Phase II project held in Helsinki, Finland, from 16-18 June 1998, edited by Louvat, D., Michaud, V., and Marevic, H. von, Nucl. Sci. and Tech., EUR 19116 EN, 1999), p. 163181.Google Scholar
[20] Rare Earth Minerals. Chemistry, origin and ore-deposits, edited by Jones, A.P., Wall, F., and Williams, C.T., Min. Soc. Series, 7, 372 p. (1996).Google Scholar
[21] Banfield, J.F. and Eggleton, R.A., Clays and Clay Minerals, 37, p. 113127 (1989).Google Scholar
[22] Schwab, R.G., Herold, H., Götz, Chr., Oliveira, N. Pinto de, N. Jb. Miner. Mh., H.6, p. 241254 (1990).Google Scholar
[23] Rasmussen, B., Am Jour. Sci., 296, p. 601632 (1996).Google Scholar
[24] Nriagu, J.O., Geochim. Cosmochim. Acta, 38, p. 887898 (1974).Google Scholar
[25] Frondel, C., Science, 128, p. 16231624 (1978).Google Scholar
[26] Stille, P., Gauthier-Lafaye, F., Jensen, K.A., Gomez, P., Ewing, R.C., Louvat, D., (in prep.).Google Scholar
[27] Skårman, C., Degueldre, C., Laaksoharju, M., Thomas, B., Tohler, L., in OKLO Working Group - Proceedings of the first EC-CEA workshop on the Oklo-natural analogue Phase II project held in Sitjes, Spain, from 18 to 20 June 1997, edited by Louvat, D. and Davies, C. (Nucl. Sci. and Tech., EUR 18314 EN, 1998), p. 227243.Google Scholar