Albitite-type uranium deposits are widely distributed, usually of low grade (<1% U3O8), but are often large and collectively contain over 1 million tonnes of U3O8. Uranium is hosted in a wide range of metamorphic lithologies, whose only common characteristic is that they have been extensively mylonitised. Ore minerals are disseminated and rarely in megascopic veins, within and adjacent to albitised mylonites. Grain size is uniformly fine, generally less than 50 microns. Scanning electron microscopy reveals that spatial association between uranium and various Ti-bearing phases is common. Gangue minerals include albite, carbonates (calcite and dolomite), and sodic pyroxene and amphibole. The ore rarely contains economic metals apart from uranium, phosphorous at Itataia being an exception. There is widespread evidence of hydrothermal zirconium mobility and hydrothermal zircon and other Zr phases are frequent and in some cases abundant gangue minerals. Positive correlations are noted between uranium and various high field strength elements. The group remains poorly described and understood, but a link to iron-oxide copper-gold (IOCG) deposits and/or carbonatite and/or alkaline magmatism is plausible.
References
[1]
Belevtsev, Y.N. Endogenic uranium deposits of precambrian shields: Environment of deposition. In Albitized Uranium Deposits: Six Articles Translated from Russian Literature; Abou-Zied, S., Kerns, G., Eds.; U.S. Department of Energy: Washington, DC, USA, 1980; pp. 55–80.
[2]
Grechishnicov, N.P. Structural setting of one type of uranium-albitite mineralisation in precambrian rocks. In Albitized Uranium Deposits: Six Articles Translated from Russian Literature; Abou-Zied, S., Kerns, G., Eds.; U.S. Department of Energy: Washington, DC, USA, 1980.
[3]
Lobato, L.M.; Fyfe, W.S. Metamorphism, metasomatism, and mineralization at Lagoa Real, Bahia, Brazil. Econ. Geol. 1990, 85, 968–989, doi:10.2113/gsecongeo.85.5.968.
[4]
Cordani, U.G.; Iyer, S.S.; Taylor, P.N.; Kawashita, K.; Sato, K.; McReath, I. Pb-Pb, Rb-Sr, and K-Ar systematics of the Lagoa Real uranium province (south-central Bahia, Brazil) and the Espinhao cycle (ca. 1.5–1.0 Ga). J. South Am. Earth Sci. 1992, 5, 33–46, doi:10.1016/0895-9811(92)90058-7.
[5]
Alexandre, P. Mineralogy and geochemistry of the sodium metasomatism-related uranium occurrence of Aricheng South, Guyana. Miner Depos. 2009, 45, 351–367, doi:10.1007/s00126-010-0278-7.
[6]
Cinelu, S.; Cuney, M. Sodic metasomatism and U-Zr mineralization: A model based on the Kurupung batholith (Guyana). Geochim. Cosmochim. Acta 2006, 70, doi:10.1016/j.gca.2006.06.120.
[7]
Emetz, A.V.; Cuney, M.; Yuzlenko, A.T. Petrochemical Model of Uranium-Mineralized Albitites of the Novokostantynivka Uranium Deposit (Ukraine). In Proceedings of International Conference on Ore Potential of Alkaline, Kimberlite and Carbonatite Magmatism, Minsk, Russia, 12–16 September 2011.
[8]
Maruejol, P.; Cathelineau, M. Metasomatoses et Mineralisations Uraniferes du Bassin de Krivoi Rog (Ukraine): Le gisement de Zheltorechensk (Mine Novaya); CREGU report 87–04; Centre de Recherches sur la Geologie des Matieres Premieres Minerales et Energetiques: Nancy, France, 1987.
[9]
Angeiras, A.G. Geology and metallogeny of the northeastern Brazil uranium-phosphorus province emphasizing the Itataia deposit. Ore Geol. Rev. 1988, 3, 211–225, doi:10.1016/0169-1368(88)90019-4.
[10]
Netto, A.M.; Meyer, A.; Cuney, M.; Poupou, G. A Thermo-Chronological Study of Itataia Phospho-Uraniferous Deposit (Ceara, Brazil) by Apatite Fission Track Analysis: Genetic Implications. In Source, Transport and Deposition of Metals, Proceedings of the 25 Years SGA Anniversary Meeting, Nancy, France, 30 August–3 September 1991; Pagel, M.A., LeRoy, J.L., Eds.; Taylor and Francis Group: Rotterdam, the Netherlands, 1991.
[11]
Oliver, N.H.; Cleverley, J.S.; Mark, G.; Pollard, P.; Bin, F.; Marshall, L.; Rubenach, M.; Williams, P.; Baker, T. Modeling the role of sodic alteration in the genesis of iron oxide copper-gold deposits, eastern Mount Isa Block, Australia. Econ. Geol. 2004, 99, 1145–1176, doi:10.2113/gsecongeo.99.6.1145.
[12]
Kalayeav, G.I. Mode of albitite distribution in zones of the ukrainian shield. In Albitized Uranium Deposits: Six Articles Translated from Russian Literature; Abou-Zied, S., Kerns, G., Eds.; U.S. Department of Energy: Washington, DC, USA, 1980; pp. 1–13.
[13]
Beck, L.S. General geology and uranium deposits of the Beaverlodge district. In Uranium Deposits of Canada; Evans, E.L., Ed.; Canadian Institute of Mining and Metallurgy: Montréal, Quebec, Canada, 1972; Volume 33, pp. 85–94.
[14]
Tremblay, L.P. Geology of the Beaverlodge Mining Area, Saskatchewan; Department of Energy, Mines and Resources: Ottawa, Canada, 1972.
[15]
Hoeve, J. Perspective on Uranium Mineralization at Beaverlodge; Report G745-1E82; Saskatchewan Research Council: Saskatoon, SK, Canada, 1982.
[16]
Turek, A. Geology of Lake Cinch Mines Limited, Uranium City, Saskatchewan. Master’s Thesis, University of Alberta, Edmonton, Canada,, January 1962.
[17]
Hoeve, J. Uranium metallogenic studies: Relationship between Hudsonian soda metasomatism and Beaverlodge vein-type mineralisation. In Saskatchewan Geological Survey; Government of Saskatchewan: Prince Albert, SK, Canada, 1982; pp. 57–59.
[18]
Ward, D.M. Uranium Geology of the Beaverlodge Area; International Atomic Energy Agency: Vienna, Austria, 1984; pp. 269–284.
[19]
Wilde, A.R.; Otto, A.; Jory, J.; Becker, E.; MacRae, C.; Pownceby, M.; Wilson, N.; Torpy, A. The Valhalla, Bikini & Skal uranium deposits, Mount Isa, Australia. Miner. Depos. 2012. submitted.
Netto, A.M. Contributions a la Mineralogie a la Petrographie et a la Metallogenie du gisement Phospho-Uranifere D’Itataia, Ceara, Bresil. Ph.D. Thesis, Université de Clermont-Ferrand, Clermont-Ferrand, France, 1984.