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Henley, Richard W., Berger, Byron R. (2011) Magmatic-vapor expansion and the formation of high-sulfidation gold deposits: Chemical controls on alteration and mineralization. Ore Geology Reviews, 39 (1) 63-74 doi:10.1016/j.oregeorev.2010.11.003

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Reference TypeJournal (article/letter/editorial)
TitleMagmatic-vapor expansion and the formation of high-sulfidation gold deposits: Chemical controls on alteration and mineralization
JournalOre Geology Reviews
AuthorsHenley, Richard W.Author
Berger, Byron R.Author
Year2011 (February)Volume39
Page(s)63-74Issue1
PublisherElsevier BV
DOIdoi:10.1016/j.oregeorev.2010.11.003Search in ResearchGate
Mindat Ref. ID238642Long-form Identifiermindat:1:5:238642:7
GUIDdaa180e8-46ce-4cec-a537-d6c345fe9ecc
Full ReferenceHenley, Richard W., Berger, Byron R. (2011) Magmatic-vapor expansion and the formation of high-sulfidation gold deposits: Chemical controls on alteration and mineralization. Ore Geology Reviews, 39 (1) 63-74 doi:10.1016/j.oregeorev.2010.11.003
Plain TextHenley, Richard W., Berger, Byron R. (2011) Magmatic-vapor expansion and the formation of high-sulfidation gold deposits: Chemical controls on alteration and mineralization. Ore Geology Reviews, 39 (1) 63-74 doi:10.1016/j.oregeorev.2010.11.003
In(2011, February) Ore Geology Reviews Vol. 39 (1) 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.

Anderson (1993)
Arribas (1995) Mineralogical Association of Canada Short Course Characteristics of high-sulfidation epithermal deposits, and their relation to magmatic fluid 23, 419
Berger (2007) The 3D fault and vein architecture of strike–slip releasing and restraining bends: evidence from volcanic-centre-related mineral deposits 290, 447
Berger (1983) Conceptual models of epithermal precious metal deposits , 191
Churakov (2000) Geochemistry International Evolution of composition of high-temperature fumarolic gases from Kudryavy Volcano, Iterup, Kuril Islands: the thermodynamic modeling 38, 436
Cox (2010) Geofluids The application of failure mode diagrams for exploring the roles of fluid pressure and stress states in controlling styles of fracture-controlled permeability enhancement in faults and shear zones 10, 217
Cox (2001) Reviews in Economic Geology Principles of structural control on permeability and fluid flow in hydrothermal systems 14, 1
Cross (1891) American Journal of Science On alunite and diaspora from the Rosita Hills, Colorado 48, 460
Cross (1896) Geology of Silver Cliff and the Rosita Hills, Colorado 2, 263
Deyell (2004) Society of Economic Geologists Special Publication Isotopic evidence for magmatic-dominated epithermal processes in the El Indio-Pascua Au–Cu–Ag Belt and relationship to geomorphologic setting 11, 55
Fournier (1985) The behavior of silica in hydrothermal solutions 2, 45
Hastie (1975)
Hedenquist (1995) Mineralogical Association of Canada Short Course The ascent of magmatic fluid: Discharge versus mineralization 23, 263
Huang (1975) Acta Geologica Taiwanica Parageneses of enargite and luzonite–famatinite in the Chinkuashih gold–copper deposits, Taiwan 18, 26
Huang (1984) Acta Geologica Taiwanica Chemical variations of enargite and luzonite–famatinite from the Chinkuashih gold–copper deposits, Taiwan 22, 118
Jannas, R.R., 1995. Reduced and oxidizing high-sulfidation deposits of the El Indio district, Chile. Unpublished Ph.D. dissertation, Harvard University, Cambridge, 421 pp.
Jannas (1999) High-sulfidation deposit types in the El Indio district, Chile 7, 219
Kodas (1994)
Lindgren (1913)
Losada-Calderon (1990) Geology, paragenesis and fluid inclusion studies of a high sulphidation epithermal/porphyry system, Nevados del Famatina district, La Rioja Province, Argentina , 457
Mancano, D.P., 1994. Microthermometry of enargite-hosted fluid inclusions from the Lepanto, Philippines, high-sulfidation Cu–Au deposit using infrared microscopy. Unpublished M.Sc. thesis, New Mexico Institute of Mining and Metallurgy, Socorro, New Mexico, 74pp.
Mavrogenes, J., Henley, R.W., in prep, Sulfosalt melts and heavy metal(As–Sb–Bi) fractionation during volcanic gas expansion.
Meyer (1967) Wall rock alteration , 166
Not Yet Imported: Journal of Non-Equilibrium Thermodynamics - journal-article : 10.1515/JNETDY.2008.005

If you would like this item imported into the Digital Library, please contact us quoting Journal ID 45196
Moritz (2009) Fluids in high-sulfidation epithermal ore deposits: constraints from infrared microthermometry of enargite-hosted fluid inclusions , 533
Ransome (1909) The geology and ore deposits of Goldfield, Nevada 66
Ruaya (1992) Assessment of magmatic components of the fluids at Mt. Pinatubo volcanic-geothermal system, Philippines from chemical and isotopic data 279, 141
Sakazaki (1964) Mining Geology Geology and ore deposits of the Chin-qua-shih Mine District (2) 14, 274
Sillitoe (2003) Linkages between volcanotectonic settings, ore fluid compositions and epithermal precious metal deposits 10, 315
Skinner (1960) Geological Society of America Bulletin Assemblage enargite–famatinite, a possible geologic thermometer (abs.) 71, 1975
Sung, J., 2005. Mineralogy and geochemistry of gold mineralization in the Goldfield district, Nevada. unpublished MSc thesis, University of Utah, Salt Lake City, 155 pp.
Toulmin (1967) Thermal aspects of ore formation , 437
Verhoogen (1949) University of California Publications in the Geological Sciences Thermodynamics of a magmatic gas phase 28, 91
Williams-Jones (2002) Geochemical Society Special Publication Vapor-transport of ore metals: in Hellmann, R., Wood, S.A., eds., Water–rock interactions, ore deposits and environmental geochemistry: a tribute to David A. Crerar 7, 279


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