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Alteration of Natural Uranyl Oxide Hydrates in Si-Rich Groundwaters: Implications For Uranium Solubility

Published online by Cambridge University Press:  25 February 2011

R.J. Finch
Affiliation:
Department of Geology, University of New Mexico, Albuquerque, NM 87131, U.S.A.
R.C. Ewing
Affiliation:
Department of Geology, University of New Mexico, Albuquerque, NM 87131, U.S.A.
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Abstract

The uranyl oxide hydrates are common initial corrosion products of uraninite (nominally U02+x) during weathering. In the presence of dissolved silica these early-formed phases alter to uranyl silicates (most commonly soddyite, U2SiO8-2H2O, and uranophane, CaU2Si2O11·6H2O). Uraninite, however, usually contains radiogenic Pb, and the earlyformed Pb-poor uranyl oxide hydrates alter incongruously to uranyl silicates plus Pb-enriched uranyl oxide hydrates such as curite. Similar to dissolved silica, radiogenic Pb may also serve to limit the mobility of U in nature by fixing U in solid phases. Curite may also play an important role in the formation of uranyl phosphates, which are significantly less soluble than the uranyl silicates, and control U solubility in many groundwaters associated with altered U ore.

Type
Research Article
Copyright
Copyright © Materials Research Society 1992

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References

REFERENCES

[1] Duerden, P., Alligator Rivers Analogue Project. Is' Annual Report 1988-1989. Australian Nuclear Science and Technology Organisation, ANSTO (1990).Google Scholar
[2] Finch, R.J. and Ewing, R.C., SKB Technical Report 91-15 (1991).Google Scholar
[3] Forsyth, R., SKB Technical Report 91-03 (1991).Google Scholar
[4] Bates, J.K., Tani, B.S., Veleckis, E., Wronkiewicz, D., in: Scientific Basis for Nuclear Waste Management XIII (Oversby, V.M. and Brown, P.W., eds.) MRS Proc. Vol. 176, 499 (1990).Google Scholar
[5] Wilson, C.N., in: Scientific Basis for Nuclear Waste Management XIV (Abrajano, T. and Johnson, L., eds.) MRS Proc. Vol. 212, 197 (1991).Google Scholar
[6] Langmuir, D., Geochim. Cosmochim. Acta, 42, 547 (1978).CrossRefGoogle Scholar
[7] Sandino, A. and Bruno, J., Geochim. Cosmochim. Acta (submitted).Google Scholar
[8] Stumm, W. and Morgan, J.J., Aquatic Chemistry, 2nd Edition. J. Wiley and Sons (1981).Google Scholar
[9] Finch, R.J. and Ewing, R.C., Radiochim. Acta, 52/53, 395 (1991).CrossRefGoogle Scholar
[10] Noe-Spirlet, M.R. and Sobry, R., Bull. Soc. Roy. Sc. Liege, 43, 164 (1974).Google Scholar
[11] Pagoaga, K., Ph.D. Thesis, University of Maryland (1983).Google Scholar
[12] Baran, V. and Unzeitig, M., Neus. Jb. Miner. Mh., H.2, 63 (1991).Google Scholar
[13] Finch, R.J. and Ewing, R.C., in: Scientific Basis for Nuclear Waste Management XIV, (Abrajano, T. and Johnson, L., eds.) MRS Proc. Vol. 212, 241 (1991).Google Scholar
[14] O'Hare, P.A.G., Lewis, B.M., and Nguyen, S.N., Journ. Chem. Thermodynamics, 20, 1287 (1988).CrossRefGoogle Scholar
[15] Nguyen, S.N., Silva, R.J., Weed, H.C., Andrews, J.E. Jr., Journ. Chem. Thermodynamics (submitted).Google Scholar
[16] Finch, R.J., Miller, M.L. and Ewing, R.C., Radiochim. Acta (submitted).Google Scholar
[17] François, A., Centenaire de la Socidtö Géologique de Belgique, Bruxelles, Belgique, 56 (1987).Google Scholar
[18] Protas, J., Bull. Soc. frang. Minér. Cristallogr., 82, 239 (1959).Google Scholar
[19] Frondel, C., U.S.G.S. Bull. 1064 (1958).Google Scholar
[20] Vochten, R. and Haverbeke, L. van, Mineral. Petrol., 43, 65 (1990).CrossRefGoogle Scholar
[21] Sandino, A. and Bruno, J., in: Scientific Basis for Nuclear Waste Management XII, (Lutze, W. and Ewing, R.C., eds.) MRS Proc. Vol. 127, 871 (1989)Google Scholar
[22] Sergeyeva, E.I., Nikitin, A.A., Naumov, G.B., Khodakovskiy, I.L., Geochimiya, 11, 1340 (1972) (English Trans. in: Geochim. Intemat., 9, 900 (1972)).Google Scholar
[23] Finch, R.J. and Ewing, R.C., Journ. Nucl. Mater. (submitted).Google Scholar
[24] Mann, A.W. and Deutscher, R.L., Chem. Geol., 29, 293 (1980).CrossRefGoogle Scholar
[25] Deliens, M., Bull. Soc. frang. Minérals. Cristallogr., 100, 32 (1977).CrossRefGoogle Scholar
[26] Gruner, J.W., Am. Min., 38, 342 (1953).Google Scholar
[27] Bignand, C., Bull. Soc. frang. Minér. Cristallogr., 78, 1 (1959).Google Scholar
[28] Vochten, R., Huybrechts, W., Remaut, G., Deliens, M., Phys. Chem. Minerals, 4, 281 (1979).CrossRefGoogle Scholar
[29] Vochten, R. and Deliens, M., Phys. Chem. Minerals, 6, 129 (1980).CrossRefGoogle Scholar
[30] Vochten, R., Spec. Publ. Geol. Soc. Afr., 7, 287 (1983).Google Scholar