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Kelly, C.J., Davis, W.J., Potter, E.G., Corriveau, L. (2020) Geochemistry of hydrothermal tourmaline from IOCG occurrences in the Great Bear magmatic zone: Implications for fluid source(s) and fluid composition evolution. Ore Geology Reviews, 118. 103329 doi:10.1016/j.oregeorev.2020.103329

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Reference TypeJournal (article/letter/editorial)
TitleGeochemistry of hydrothermal tourmaline from IOCG occurrences in the Great Bear magmatic zone: Implications for fluid source(s) and fluid composition evolution
JournalOre Geology Reviews
AuthorsKelly, C.J.Author
Davis, W.J.Author
Potter, E.G.Author
Corriveau, L.Author
Year2020 (March)Volume118
Page(s)103329
PublisherElsevier BV
DOIdoi:10.1016/j.oregeorev.2020.103329Search in ResearchGate
Mindat Ref. ID236047Long-form Identifiermindat:1:5:236047:2
GUID763cac41-494f-4d33-a5d7-03aa29d9bc09
Full ReferenceKelly, C.J., Davis, W.J., Potter, E.G., Corriveau, L. (2020) Geochemistry of hydrothermal tourmaline from IOCG occurrences in the Great Bear magmatic zone: Implications for fluid source(s) and fluid composition evolution. Ore Geology Reviews, 118. 103329 doi:10.1016/j.oregeorev.2020.103329
Plain TextKelly, C.J., Davis, W.J., Potter, E.G., Corriveau, L. (2020) Geochemistry of hydrothermal tourmaline from IOCG occurrences in the Great Bear magmatic zone: Implications for fluid source(s) and fluid composition evolution. Ore Geology Reviews, 118. 103329 doi:10.1016/j.oregeorev.2020.103329
In(2020) Ore Geology Reviews Vol. 118. Elsevier BV

References Listed

These are the references the publisher has listed as being connected to the article. Please check the article itself for the full list of references which may differ. Not all references are currently linkable within the Digital Library.

Acosta-Góngora, P., Gleeson, S.A., Ootes, L., Jackson, V.A., Lee, M., Samson, I., 2011. Preliminary observations on the IOCG mineralogy at the Damp, Fab, and Nori showings and Terra-Norex mines, Great Bear magmatic zone. Northwest Territories Geological Survey, NWT Open File Report 2011-001.
Barton, M.D., Johnson, D.A., 2000. Alternative brine sources for Fe-oxide (-Cu-Au) systems: Implications for hydrothermal alteration and metals. In: Porter, T.M. (Ed.), Hydrothermal iron oxide copper-gold related deposits: A global perspective. 1, 43–60.
Not Yet Imported: Treatise on Geochemistry - book-chapter : 10.1016/B978-0-08-095975-7.01123-2

If you would like this item imported into the Digital Library, please contact us quoting Journal ID
Corriveau, L., Williams, P.J., Mumin, A.H., 2010. Alteration vectors to IOCG mineralization – from uncharted terranes to deposits. In: Corriveau, L. and Mumin, A.H. (Eds.), Exploring for Iron Oxide Copper-Gold Deposits: Canada and Global Analogues. Geological Association of Canada, Short Course Notes 20, pp. 89–110.
Not Yet Imported: - report : 10.4095/296301

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Davis, W., Corriveau, L., van Breemen, O., Bleeker, W., Montreuil, J.-F., Potter, E., Pelleter, E., 2011. Timing of IOCG mineralizing and alteration events within the Great Bear magmatic zone [abs.]: Northwest Territories Geoscience Office, Yellowknife Geoscience Forum, 39th, Canada. 15–17 November 2011, Abstracts, p. 97.
Foster (2018) Boron isotope analysis of geological materials , 13
Gandhi (1994) Geol. Surv. Canada Bull. Geological setting and genetic aspects of mineral occurrences in the southern Great Bear magmatic zone, Northwest Territories 475, 63
Not Yet Imported: - report : 10.4095/134230

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Goad, R.E., Mumin, A.H., Duke, N.A., Neale, K.L. Mulligan, D.L., 2000. Geology of the Proterozoic iron oxide-hosted NICO cobalt-gold-bismuth and Sue-Dianne copper-silver deposits, southern Great Bear Magmatic Zone, Northwest Territories, Canada. In: Porter, T.M. (Ed.), Hydrothermal Iron Oxide Copper-Gold and Related Deposits: a Global Perspective, 1, pp. 249–267.
Not Yet Imported: Boron - book-chapter : 10.1515/9781501509223-012

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Henry (1985) Am. Min. Tourmaline as a petrogenetic indicator mineral- An example from the staurolite-grade metapelites of NW Maine 70, 1
Hoffman, P.F., 1978. Sloan River map area (86K), District of Mackenzie. Geological Survey of Canada, Open File 535. 1 map.
Jackson, V.A., 2008. Preliminary geologic map of part of the southern Wopmay Orogen (parts of NTS 86B and 86C; 2007 updates); descriptive notes to accompany 1:100,000 scale map. NWT Geoscience Office. NWT Open Report 2008-007.
Not Yet Imported: - report : 10.4095/313670

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Mark, G., Oliver, N.H.S., Williams, P.J., Valenta, R.K., Crookes, R.A., 2000. The evolution of the Ernest Henry Fe-oxide-(Cu–Au) hydrothermal system. In: Porter, T.M. (Ed.), Hydrothermal iron oxide copper–gold and related deposits: A global perspective, 1, pp. 123–136.
Mumin, A.H., Somarin, A.K., Jones, B., Corriveau, L., Ootes, L., Camier, J., 2010. The IOCG-porphyry-epithermal continuum of deposits types in the Great Bear Magmatic Zone, Northwest Territories, Canada. In Corriveau, L. and Mumin, A.H., (Eds.), Exploring for iron oxide copper-gold deposits: Canada and global analogues. Geological Association of Canada, Short Course Notes 20, pp. 59–78.
Novák, M., Henry, D.J., Hawthorne, F.C., Ertl, A., Uher, P., Dutrow, B.L., Pezzotta, F., 2009. Nomenclature of the tourmaline-group minerals. In: Report of the Subcommittee on Tourmaline Nomenclature to the International Mineralogical Association’s Commission on New Minerals. Nomenclature and Classification.
Not Yet Imported: Boron - book-chapter : 10.1515/9781501509223-015

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Potter (2017) Geol. Surv. Canada Open File Uranium ore systems project, Subproject 1: Uranium fluid pathways, Activity U-1.2: Role of marine brines in the formation of giant uranium deposits 8199, 95
Potter (2019) The Southern Breccia Metasomatic Uranium System of the Great Bear Magmatic Zone, Canada: Iron Oxide‐Copper‐Gold (IOCG) and Albitite‐Hosted Uranium Linkages , 109
Potter, E.G., Acosta-Gongora, P., Corriveau, L., Montreuil, J-F., Yang, Z., in press. Uranium enrichment in iron oxide-alkali-altered (IOAA) systems of the Great Bear magmatic zone as revealed by trace element signatures of uraninite. In: Corriveau, L., Potter, E.G., Mumin, A.H. (Eds.), Iron oxide copper-gold (Ag-Bi-Co-U-REE) and affiliated deposits, Geological Association of Canada, Special Paper 52, Chapter 6.
Reynolds, L.J., 2000. Geology of the Olympic Dam Cu-U-Au-Ag-REE deposit. In: Porter, T.M. (Ed.), Hydrothermal iron oxide-copper-gold and related deposits: a global perspective, 1, pp. 93–104.
Selway, J.B., Jiang, X., 2002. Tourmaline-recalculation software quoted in Tindle et al. (2002).
Sidder (1993) US Geol. Surv. Bull. Mineralogic and fluid-inclusion studies of the Pea Ridge iron-rare-earth-element deposit, Southeast Missouri 2039, 205
Sidor, M., 2000. The origin of the black rock alteration overprinting iron-rich sediments and its genetic relationship to disseminated polymetallic sulphide ores, Lou Lake, Northwest Territories, Canada. Unpublished MSc thesis, University of Western Ontario, 190.
Skirrow, R.G., 2010. “Hematite-group” IOCG±U ore systems. Tectonic settings, hydrothermal characteristics, and Cu-Au and U mineralizing processes. In: Corriveau, L. and Mumin, A.H., (Eds.), Exploring for iron oxide copper-gold deposits: Canada and global analogues. Geological Association of Canada, Short Course Notes 20, 39–58.
Slack, J.F., 2013. Descriptive and geoenvironmental model for cobalt-copper-gold deposits in metasedimentary rocks. Scientific Investigations Report 2010–5070. 218 p.
Williams, P.J., 2010. “Magnetite-group” IOCGs with special reference to Cloncurry (NW Queensland) and Northern Sweden. Settings, alteration, deposit characteristics, fluid sources, and their relationship to apatite-rich iron ores. In: Corriveau, L. and Mumin, A.H., Eds.), Exploring for iron oxide copper-gold deposits: Canada and global analogues. Geological Association of Canada, Short Course Notes 20, 23–38.


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