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2016 | OriginalPaper | Buchkapitel

14. Meta-evaporites

verfasst von : John K. Warren

Erschienen in: Evaporites

Verlag: Springer International Publishing

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Abstract

Evaporite salts can survive well into the metamorphic realm, but are altered, recrystallised or transformed into new minerals. And so, beyond the early greenschist phase, little or nothing of the original sedimentary mineral phase remains with the possible exception of anhydrite (Table 14.1; Spear 1993). Consider “the before and after” situation as a sequence of evaporite-entraining sediments passes into the metamorphic realm. Under a likely “before” regional metamorphism scenario, a typical buried marine evaporite body occupies a continental margin position, is hundreds of metres thick, tens to hundreds of kilometres wide, perhaps with halokinetic geometries and an extensively tilted and faulted overburden. Halite typically makes up more than 60–80 % of the total rock salt volume in a basinwide unit. This halite is likely to be interlayered with anhydrite, bitterns, magnesian carbonates and siliciclastic clays. “After” metamorphism, typically driven by subduction and continent-continent collision, the end product of this once dominantly NaCl body of rock is a series of sodic and magnesian aluminosilicates, magnesites, calc-silicates and marbles with local zones of potassic enrichment. The immediate question is, where did all that salt and the associated volatiles (Cl, CO2, SO3) go?

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Fußnoten
1
Pressure units: 1 bar = 100 kPa = 0.987 atmospheres and 1 kilobar = 1,000 bars = 100 MPa
 
2
The illite lattice is structurally very similar to muscovite and it tends to transform to muscovite with increasing metamorphic grade. The Illite crystallinity or Kübler index is experimentally determined by measuring the full width at half maximum for the X-ray diffraction reflection peak along the (001) crystallographic axis of the illite sample. This value is an indirect measurement of the thickness of illite/muscovite packets, which denote change in metamorphic grade.
 
3
Metamorphism and metasomatism both involve the re-equilibration of mineral assemblages due to changes in pressure, temperature and/or chemical environment. Both processes involve material transport but on different length scales, so every metamorphic reaction is metasomatic on a local scale. Fluids provide a transport mechanism which is orders of magnitude faster than solid state diffusion and induce re-equilibration through dissolution of parent phases and reprecipitation of products (Putnis and Austrheim 2010).
 
4
Phlogopite is a yellow, greenish, or reddish-brown member of the mica family of phyllosilicates that is also known as magnesium mica.
 
5
Gedrite is a silicate mineral of the amphibole group with formula: (Mg;Fe2+)2[(Mg;Fe2+)3Al2](Si6Al2)O22(OH)2
 
6
Itabirite, is a banded-quartz hematite and hematite schist, constituting a laminated, metamorphosed oxide-facies iron formation in which the original chert or jasper bands have been recrystallized into layers made up of distinct crystals of quartz and the iron is present as thin layers of hematite, magnetite, or martite.
 
7
The Ancient Greeks, distinguished between precious and semi-precious stones; similar distinctions were made in other ancient cultures. In modern usage, the precious stones are diamond, ruby, sapphire and emerald, with all other gemstones being semi-precious.
 
8
Chromophore; is the part of a gem lattice responsible for its colour. A gem’s colour arises when a molecule absorbs certain wavelengths of visible light and transmits or reflects others. It is a structural feature in the lattice indicative of the presence of a gem-specific electron configuration of the ions in its crystal lattice; such as transition metal ions (Cr, V or Fe) occupying several different coordination sites. For example, ferrous iron (Fe2+) or ferric iron (Fe3+), the ferrous ion in peridot causes the green colour and ferric ion causes the yellow colour in chrysoberyl. This colour effect has important uses in heat-treatment gemstones such as blue colour in heat-treated sapphire.
 
9
Lapis is the Latin word for “stone” and lazuli is the genitive form of the Medieval Latin lazulum meaning blue, which was taken originally from the Persian lāžaward, the name of a place where lapis lazuli was mined. Taken as a whole, lapis lazuli originally meant “stone of Lāzhward.” With time, the name of the place came to be associated with the stone mined there and, eventually, with its bright blue colour. Lapis lazuli’s use as jewellery can be traced back to the 5th millennium B.C.E. with the discovery of beads at a cemetery outside the temple walls of Eridu (Sumer) in southern Babylonia (Von Rosen 1990). To the ancient Egyptians, it was considered a gem representing the skies or heaven, thus was thought to denote light, truth and wisdom. It was thus often shaped into eye-shaped gems and was worn by judges in ancient Egypt. A lapis amulet graced the brow of Ra. Lapis is noted in Revelations in Christian mythology as a stone in the Breastplate of Aaron. In China, lapis was worn during the Manchu dynasty for services in the Temple of Heaven. The Romans and Greeks used it as a cure for fever and melancholy.
The Sar-e-Sang region has supplied much of the gem quality lapis to the world. One of the first European explorers to the region (Wood 1841) described mining methods in use at that time. Camel-thorn and tamarisk twigs were collected from the valley below and carried up the steep path to the mine. When sufficient fuel had been collected, it was piled against the rock face and a fire was lit. When the rock was hot, cold water, which also had to be carried up the steep 350 m ascent from the valley floor, was thrown onto it. The rock cracked and split, enabling further work to be done with the primitive tools available (pick, hammer and chisel) in order to extract the lapis lazuli from its marble host rock.
 
10
Emerald is a brilliant, grass-green variety of beryl [Be3(Al,Cr)2Si6O18], highly favoured as a gemstone. Green colour is caused by trace of chromium (Cr3+) and vanadium (V3+) ions.
 
11
Chromium is the chromophore in both ruby and (most) emerald. In ruby, the details of the atomic environment and local charges around the chromium ion result in a strong interaction, equivalent to a small “cage” around the ion. This induces light absorption at high energy, and hence most of the transmission is at low energy, in the red part of the visible spectrum. The opposite occurs in emerald, in which the local environment is more relaxed, resulting in a looser “cage” around the chromium ion. The absorption is at lower energies, which results in the well-known emerald-green colour (Groat and Laurs 2009).
 
12
Tsavorite (also spelled tsavolite, and tsavolithe) is a transparent, bright green to emerald green variety of grossular garnet Ca3Al2(SiO4)3 coloured by chromium and vanadium. RI: 1.734–1.744. SG: 3.68. H: 6½–7. Originally discovered in 1967 by British-born gemmologist Campbell Bridges and described from the Tsavo National Game Park in Kenya, from which it took its name, this green vanadium-bearing (goldmanite-component) grossular garnet, with minor chromium, is more prevalent in Tanzania, with current production from Tunduru, Ruangwa, Umba, Merelani Hills and Komolo, which has outstripped production from Kenya. Also found at Gogogogo, Madagascar, and in the Swat region, Pakistan. In 2009, Campbell Bridges was ambushed and killed by a Kenyan mob, who were illegally mining the gem on his property.
 
13
Tanzanite; a commercial term for cut zoisite; transparent blue to violet gem, pleochroic variety of zoisite, which exhibits strongly trichroic properties in deep blue, deep red, and greenish yellow. Optics; α:1.692, β:1.693, γ:1.700. Birefringence: 0.009. Dispersion: 0.019. SG;3.38. H;6–7. Currently, high quality gem forms are considered to be a thousand times rarer than diamond, but its relative softness keeps the price (hundreds to thousands of dollars per carat) far below that of fine diamond. Tiffany & Co. coined the name tanzanite for blue zoisite as they considered the term “zoisite” sounded too much like “suicide.”
 
14
Celsian is an uncommon feldspar mineral, a barium aluminosilicate, BaAl2Si2O8 . It is a metamorphic mineral that may indicate an exhalative hydrothermal precursor.
 
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Zurück zum Zitat Conly, A. G., 1995, Geological setting and genesis of the hanging wall sulphide zones, Sullivan Zn-Pb Deposit, southeastern British Columbia: Masters thesis, Carleton University, Ottawa, ON, Canada. Conly, A. G., 1995, Geological setting and genesis of the hanging wall sulphide zones, Sullivan Zn-Pb Deposit, southeastern British Columbia: Masters thesis, Carleton University, Ottawa, ON, Canada.
Zurück zum Zitat Conor, C. H. H., and W. V. Preiss, 2008, Understanding the 1720–1640 Ma Palaeoproterozoic Willyama Supergroup, Curnamona Province, Southeastern Australia: Implications for tectonics, basin evolution and ore genesis: Precambrian Research, v. 166, p. 297–317. Conor, C. H. H., and W. V. Preiss, 2008, Understanding the 1720–1640 Ma Palaeoproterozoic Willyama Supergroup, Curnamona Province, Southeastern Australia: Implications for tectonics, basin evolution and ore genesis: Precambrian Research, v. 166, p. 297–317.
Zurück zum Zitat Cook, N., 1992, Geology of metamorphosed Proterozoic playa lake deposits, Olary Block, South Australia: PhD thesis, University of New England. Cook, N., 1992, Geology of metamorphosed Proterozoic playa lake deposits, Olary Block, South Australia: PhD thesis, University of New England.
Zurück zum Zitat Cook, N., 1993, Composition and source of fluids in metamorphosed non-marine evaporites, Olary Block, South Australia: Conference: Mid- to lower-crustal metamorphism and fluids conference, Mount Isa, Mount Isa, Queensland, Australia, July 26-Aug. 1, 1993, p. 42. Cook, N., 1993, Composition and source of fluids in metamorphosed non-marine evaporites, Olary Block, South Australia: Conference: Mid- to lower-crustal metamorphism and fluids conference, Mount Isa, Mount Isa, Queensland, Australia, July 26-Aug. 1, 1993, p. 42.
Zurück zum Zitat Cook, N. D. J., and P. M. Ashley, 1992, Meta-evaporite sequence, exhalative chemical sediments and associated rocks in the Proterozoic Willyama Supergroup, South Australia: implications for metallogenesis: Precambrian Research, v. 56, p. 211–226. Cook, N. D. J., and P. M. Ashley, 1992, Meta-evaporite sequence, exhalative chemical sediments and associated rocks in the Proterozoic Willyama Supergroup, South Australia: implications for metallogenesis: Precambrian Research, v. 56, p. 211–226.
Zurück zum Zitat Corriveau, L., 2007, Iron Oxide Copper-Gold (±Ag, ±Nb, ±REE, ±U) Deposits: A Canadian Perspective, in W. D. Goodfellow, ed., Mineral Deposits of Canada: A Synthesis of Major Deposit Types, District Metallogeny, the Evolution of Geological Provinces, and Exploration Methods, Geological Association of Canada, Mineral Deposits Division, Special Publication, Vol. 5, p. 1–23. Corriveau, L., 2007, Iron Oxide Copper-Gold (±Ag, ±Nb, ±REE, ±U) Deposits: A Canadian Perspective, in W. D. Goodfellow, ed., Mineral Deposits of Canada: A Synthesis of Major Deposit Types, District Metallogeny, the Evolution of Geological Provinces, and Exploration Methods, Geological Association of Canada, Mineral Deposits Division, Special Publication, Vol. 5, p. 1–23.
Zurück zum Zitat Corriveau, L., S. Perreault, and A. Davidson, 2007, Prospective metallogenic settings of the Grenville Province, in W. D. Goodfellow, ed., Mineral Deposits of Canada: A Synthesis of Major Deposit-Types, District Metallogeny, the Evolution of Geological Provinces, and Exploration Methods, Geological Association of Canada, Mineral Deposits Division, Special Publication No. 5, p. 814–847. Corriveau, L., S. Perreault, and A. Davidson, 2007, Prospective metallogenic settings of the Grenville Province, in W. D. Goodfellow, ed., Mineral Deposits of Canada: A Synthesis of Major Deposit-Types, District Metallogeny, the Evolution of Geological Provinces, and Exploration Methods, Geological Association of Canada, Mineral Deposits Division, Special Publication No. 5, p. 814–847.
Zurück zum Zitat Corriveau, L., S. Perreault, and A. Davidson, 2007, Prospective metallogenic settings of the Grenville Province, in W. D. Goodfellow, ed., Mineral Deposits of Canada: A Synthesis of Major Deposit-Types, District Metallogeny, the Evolution of Geological Provinces, and Exploration Methods, Geological Association of Canada, Mineral Deposits Division, Special Publication No. 5, p. 814–847. Corriveau, L., S. Perreault, and A. Davidson, 2007, Prospective metallogenic settings of the Grenville Province, in W. D. Goodfellow, ed., Mineral Deposits of Canada: A Synthesis of Major Deposit-Types, District Metallogeny, the Evolution of Geological Provinces, and Exploration Methods, Geological Association of Canada, Mineral Deposits Division, Special Publication No. 5, p. 814–847.
Zurück zum Zitat Crawford, A. J., and D. Hilyard, 1990, Geochemistry of Late Proterozoic tholeiitic flood basalts, Adelaide Geosyncline, South Australia: Geological Society of Australia Special Publication, v. 16, p. 49–67. Crawford, A. J., and D. Hilyard, 1990, Geochemistry of Late Proterozoic tholeiitic flood basalts, Adelaide Geosyncline, South Australia: Geological Society of Australia Special Publication, v. 16, p. 49–67.
Zurück zum Zitat Crick, I. H., and M. D. Muir, 1980, Evaporites and uranium mineralization in the Pine Creek Geosyncline: Symposium on the Pine Creek Geosyncline, jointly sponsored by the Bureau of Mineral Resources, Geology and Geophysics and the CSIRO Institute of Earth Resources, in cooperation with the International Atomic Energy Agency,, p. 531–542. Crick, I. H., and M. D. Muir, 1980, Evaporites and uranium mineralization in the Pine Creek Geosyncline: Symposium on the Pine Creek Geosyncline, jointly sponsored by the Bureau of Mineral Resources, Geology and Geophysics and the CSIRO Institute of Earth Resources, in cooperation with the International Atomic Energy Agency,, p. 531–542.
Zurück zum Zitat Crick, I. H., and M. D. Muir, 1980, Evaporites and uranium mineralization in the Pine Creek Geosyncline: Symposium on the Pine Creek Geosyncline, jointly sponsored by the Bureau of Mineral Resources, Geology and Geophysics and the CSIRO Institute of Earth Resources, in cooperation with the International Atomic Energy Agency,, p. 531–542. Crick, I. H., and M. D. Muir, 1980, Evaporites and uranium mineralization in the Pine Creek Geosyncline: Symposium on the Pine Creek Geosyncline, jointly sponsored by the Bureau of Mineral Resources, Geology and Geophysics and the CSIRO Institute of Earth Resources, in cooperation with the International Atomic Energy Agency,, p. 531–542.
Zurück zum Zitat Davidson, G. J., H. Paterson, S. Meffre, and R. Berry, 2008, Constraints on uranium introduction into a hematitic breccia (Oak Dam IOCG Prospect, Olympic Dam region); can we take a leaf out of the unconformity-U page?: International Geological Congress, Abstracts = Congres Geologique International, Resumes, v. 33. Davidson, G. J., H. Paterson, S. Meffre, and R. Berry, 2008, Constraints on uranium introduction into a hematitic breccia (Oak Dam IOCG Prospect, Olympic Dam region); can we take a leaf out of the unconformity-U page?: International Geological Congress, Abstracts = Congres Geologique International, Resumes, v. 33.
Zurück zum Zitat Davis, T. B., 2004, Mine-Scale Structural Controls on the Mount Isa Zn-Pb-Ag and Cu Orebodies: Economic Geology, v. 99, p. 543–559. Davis, T. B., 2004, Mine-Scale Structural Controls on the Mount Isa Zn-Pb-Ag and Cu Orebodies: Economic Geology, v. 99, p. 543–559.
Zurück zum Zitat De Lorraine, W. F., 2001, Metamorphism, polydeformation, and extensive remobilization of the Balmat zinc orebodies, northwest Adirondacks, New York: Society of Economic Geologists, Guidebook Series, v. 5, p. 25–54. De Lorraine, W. F., 2001, Metamorphism, polydeformation, and extensive remobilization of the Balmat zinc orebodies, northwest Adirondacks, New York: Society of Economic Geologists, Guidebook Series, v. 5, p. 25–54.
Zurück zum Zitat Doe, B. R., 1960, The distribution and composition of sulfide minerals at Balmat, New York.: doctoral thesis, California Institute of Technology, Pasedena. Doe, B. R., 1960, The distribution and composition of sulfide minerals at Balmat, New York.: doctoral thesis, California Institute of Technology, Pasedena.
Zurück zum Zitat Dommanget, A., J. P. Milesi, and D. M., 1993, The Loulo gold and tourmaline-bearing deposit- A polymorph type in the Early Proterozoic of Mali (West Africa): Mineralium Deposita, v. 28, p. 253–263. Dommanget, A., J. P. Milesi, and D. M., 1993, The Loulo gold and tourmaline-bearing deposit- A polymorph type in the Early Proterozoic of Mali (West Africa): Mineralium Deposita, v. 28, p. 253–263.
Zurück zum Zitat Dostal, J., J. Keppie, H. Macdonald, and F. Ortega-Guti√©rrez, 2004, Sedimentary Origin of Calcareous Intrusions in the ~1 Ga Oaxacan Complex, Southern Mexico: Tectonic Implications: International Geology Review, v. 46, p. 528–541. Dostal, J., J. Keppie, H. Macdonald, and F. Ortega-Guti√©rrez, 2004, Sedimentary Origin of Calcareous Intrusions in the ~1 Ga Oaxacan Complex, Southern Mexico: Tectonic Implications: International Geology Review, v. 46, p. 528–541.
Zurück zum Zitat Dreher, A., R. Xavier, B. Taylor, and S. Martini, 2008, New geologic, fluid inclusion and stable isotope studies on the controversial Igarapé Bahia Cu–Au deposit, Carajás Province, Brazil: Mineralium Deposita, v. 43, p. 161–184. Dreher, A., R. Xavier, B. Taylor, and S. Martini, 2008, New geologic, fluid inclusion and stable isotope studies on the controversial Igarapé Bahia Cu–Au deposit, Carajás Province, Brazil: Mineralium Deposita, v. 43, p. 161–184.
Zurück zum Zitat Dufour, M., A. Kol’tsov, A. Zolotarev, and A. Kuznetsov, 2007, Corundum-bearing metasomatic rocks in the Central Pamirs: Petrology, v. 15, p. 151–167. Dufour, M., A. Kol’tsov, A. Zolotarev, and A. Kuznetsov, 2007, Corundum-bearing metasomatic rocks in the Central Pamirs: Petrology, v. 15, p. 151–167.
Zurück zum Zitat Eilu, P., E. J. Mikucki, and A. L. Dugdale, 2001, Alteration zoning and primary geochemical dispersion at the Bronzewing lode-gold deposit, Western Australia: Mineralium Deposita, v. 36, p. 13–31. Eilu, P., E. J. Mikucki, and A. L. Dugdale, 2001, Alteration zoning and primary geochemical dispersion at the Bronzewing lode-gold deposit, Western Australia: Mineralium Deposita, v. 36, p. 13–31.
Zurück zum Zitat Ellis, D. M., 1978, Stability and phase equilibra of chloride-bearing scapolites at 750°C and 4000 bar: Geochimica et Cosmochimica Acta, v. 42, p. 1271–1281. Ellis, D. M., 1978, Stability and phase equilibra of chloride-bearing scapolites at 750°C and 4000 bar: Geochimica et Cosmochimica Acta, v. 42, p. 1271–1281.
Zurück zum Zitat Enami, M., J. G. Liou, and D. K. Bird, 1992, Cl-bearing amphibole in the Salton Sea geothermal system, California: Canadian Mineralogist, v. 30, p. 1077–1092. Enami, M., J. G. Liou, and D. K. Bird, 1992, Cl-bearing amphibole in the Salton Sea geothermal system, California: Canadian Mineralogist, v. 30, p. 1077–1092.
Zurück zum Zitat Engvik, A. K., K. Mezger, S. Wortelkamp, R. Bast, F. Corfu, A. Korneliussen, P. Ihlen, B. Bingen, and H. Austrheim, 2011, Metasomatism of gabbro – mineral replacement and element mobilization during the Sveconorwegian metamorphic event: Journal Of Metamorphic Geology, v. 29, p. 399–423. Engvik, A. K., K. Mezger, S. Wortelkamp, R. Bast, F. Corfu, A. Korneliussen, P. Ihlen, B. Bingen, and H. Austrheim, 2011, Metasomatism of gabbro – mineral replacement and element mobilization during the Sveconorwegian metamorphic event: Journal Of Metamorphic Geology, v. 29, p. 399–423.
Zurück zum Zitat Eriksson, P. G., W. Altermann, D. R. Nelson, W. U. Mueller, and O. Catuneanu, 2004, The Precambrian Earth – Tempos and Events: Developments in Precambrian Geology, Elsevier, 941 p. Eriksson, P. G., W. Altermann, D. R. Nelson, W. U. Mueller, and O. Catuneanu, 2004, The Precambrian Earth – Tempos and Events: Developments in Precambrian Geology, Elsevier, 941 p.
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Zurück zum Zitat Ernst, W. G., 2009, Archean plate tectonics, rise of Proterozoic supercontinentality and onset of regional, episodic stagnant-lid behavior: Gondwana Research, v. 15, p. 243–253. Ernst, W. G., 2009, Archean plate tectonics, rise of Proterozoic supercontinentality and onset of regional, episodic stagnant-lid behavior: Gondwana Research, v. 15, p. 243–253.
Zurück zum Zitat Evans, W. B., 1970, The Triassic salt deposits of north-western England: Quarterly Journal of the Geological Society, v. 126, p. 103–123. Evans, W. B., 1970, The Triassic salt deposits of north-western England: Quarterly Journal of the Geological Society, v. 126, p. 103–123.
Zurück zum Zitat Fareeduddin, I. R. Kirmani, and S. Gupta, 2010, Low-Al tourmalines of ‘oxy-dravite’–povondraite series from Cu–Au deposit of Ghagri area, Salumber–Ghatol belt, Aravalli Supergroup, Rajasthan: Current Science, v. 99, p. 933–938. Fareeduddin, I. R. Kirmani, and S. Gupta, 2010, Low-Al tourmalines of ‘oxy-dravite’–povondraite series from Cu–Au deposit of Ghagri area, Salumber–Ghatol belt, Aravalli Supergroup, Rajasthan: Current Science, v. 99, p. 933–938.
Zurück zum Zitat Faryad, S. W., 2002, Metamorphic Conditions and Fluid Compositions of Scapolite-Bearing Rocks from the Lapis Lazuli Deposit at Sare Sang, Afghanistan: Journal of Petrology, v. 43, p. 725–747. Faryad, S. W., 2002, Metamorphic Conditions and Fluid Compositions of Scapolite-Bearing Rocks from the Lapis Lazuli Deposit at Sare Sang, Afghanistan: Journal of Petrology, v. 43, p. 725–747.
Zurück zum Zitat Feneyrol, J., G. Giuliani, D. Ohnenstetter, A. E. Fallick, J. E. Martelat, P. Monié, J. Dubessy, C. Rollion-Bard, E. Le Goff, E. Malisa, A. F. M. Rakotondrazafy, V. Pardieu, T. Kahn, D. Ichang’i, E. Venance, N. R. Voarintsoa, M. M. Ranatsenho, C. Simonet, E. Omito, C. Nyamai, and M. Saul, 2013, New aspects and perspectives on tsavorite deposits: Ore Geology Reviews, v. 53, p. 1–25. Feneyrol, J., G. Giuliani, D. Ohnenstetter, A. E. Fallick, J. E. Martelat, P. Monié, J. Dubessy, C. Rollion-Bard, E. Le Goff, E. Malisa, A. F. M. Rakotondrazafy, V. Pardieu, T. Kahn, D. Ichang’i, E. Venance, N. R. Voarintsoa, M. M. Ranatsenho, C. Simonet, E. Omito, C. Nyamai, and M. Saul, 2013, New aspects and perspectives on tsavorite deposits: Ore Geology Reviews, v. 53, p. 1–25.
Zurück zum Zitat Feneyrol, J., D. Ohnenstetter, G. Giuliani, A. E. Fallick, C. Rollion-Bard, J.-L. Robert, and E. P. Malisa, 2012, Evidence of evaporites in the genesis of the vanadian grossular tsavorite deposit in Namalulu, Tanzania: The Canadian Mineralogist, v. 50, p. 745–769. Feneyrol, J., D. Ohnenstetter, G. Giuliani, A. E. Fallick, C. Rollion-Bard, J.-L. Robert, and E. P. Malisa, 2012, Evidence of evaporites in the genesis of the vanadian grossular tsavorite deposit in Namalulu, Tanzania: The Canadian Mineralogist, v. 50, p. 745–769.
Zurück zum Zitat Ferguson, J., 1980, Metamorphism in the Pine Creek Geosyncline and its bearing on stratigraphic correlations: International Uranium Symposium on the Pine Creek Geosyncline, Australia, 1979, Proceedings of the International Atomic Energy Agency, Vienna, p. 91–100. Ferguson, J., 1980, Metamorphism in the Pine Creek Geosyncline and its bearing on stratigraphic correlations: International Uranium Symposium on the Pine Creek Geosyncline, Australia, 1979, Proceedings of the International Atomic Energy Agency, Vienna, p. 91–100.
Zurück zum Zitat Fiori, M., and S. M. Grillo, 2002, Albite-chlorite and talc-chlorite deposits in metasedimantary andgranitoid rocks of central Sardinia (Italy): Boletim Paranaense de Geociências, v. 50, p. 51–57. Fiori, M., and S. M. Grillo, 2002, Albite-chlorite and talc-chlorite deposits in metasedimantary andgranitoid rocks of central Sardinia (Italy): Boletim Paranaense de Geociências, v. 50, p. 51–57.
Zurück zum Zitat Flament, N., N. Coltice, and P. F. Rey, 2008, A case for late-Archaean continental emergence from thermal evolution models and hypsometry: Earth and Planetary Science Letters, v. 275, p. 326–336. Flament, N., N. Coltice, and P. F. Rey, 2008, A case for late-Archaean continental emergence from thermal evolution models and hypsometry: Earth and Planetary Science Letters, v. 275, p. 326–336.
Zurück zum Zitat Forbes, B. G., 1991, Olary, South Australia; Sheet S1 54–2; Explanatory Notes: Geological Survey of South Australia. Forbes, B. G., 1991, Olary, South Australia; Sheet S1 54–2; Explanatory Notes: Geological Survey of South Australia.
Zurück zum Zitat Foster, D. R. W., and J. R. Austin, 2008, The 1800–1610 Ma stratigraphic and magmatic history of the Eastern Succession, Mount Isa Inlier, and correlations with adjacent Paleoproterozoic terranes: Precambrian Research, v. 163, p. 7–30. Foster, D. R. W., and J. R. Austin, 2008, The 1800–1610 Ma stratigraphic and magmatic history of the Eastern Succession, Mount Isa Inlier, and correlations with adjacent Paleoproterozoic terranes: Precambrian Research, v. 163, p. 7–30.
Zurück zum Zitat Franchini, M. B., R. E. De Barrio, M. J. Pons, I. B. Schalamuk, F. J. Rios, and L. Meinert, 2007, Fe skarn, iron oxide Cu-Au, and manto Cu-(Ag) deposits in the Andes Cordillera of southwest Mendoza Province (34 degrees −36 degrees s), Argentina: Exploration and Mining Geology, v. 16, p. 233–265. Franchini, M. B., R. E. De Barrio, M. J. Pons, I. B. Schalamuk, F. J. Rios, and L. Meinert, 2007, Fe skarn, iron oxide Cu-Au, and manto Cu-(Ag) deposits in the Andes Cordillera of southwest Mendoza Province (34 degrees −36 degrees s), Argentina: Exploration and Mining Geology, v. 16, p. 233–265.
Zurück zum Zitat Frank, T. D., and C. R. Fielding, 2003, Marine origin for Precambrian, carbonate-hosted magnesite?: Geology, v. 31, p. 1101–1104. Frank, T. D., and C. R. Fielding, 2003, Marine origin for Precambrian, carbonate-hosted magnesite?: Geology, v. 31, p. 1101–1104.
Zurück zum Zitat Franz, L., R. L. Romer, and C. Capitani, 2013, Protoliths and phase petrology of whiteschists: Contributions to Mineralogy and Petrology, v. 166, p. 255–274. Franz, L., R. L. Romer, and C. Capitani, 2013, Protoliths and phase petrology of whiteschists: Contributions to Mineralogy and Petrology, v. 166, p. 255–274.
Zurück zum Zitat Frietsch, R., P. Tuisku, O. Martinsson, and J. Perdahl, 1997, Early Proterozoic Cu-(Au) and Fe ore deposits associated with regional NaCl metasomatism in northern Fennoscandinavia: Ore Geology Reviews, v. 12, p. 1–34. Frietsch, R., P. Tuisku, O. Martinsson, and J. Perdahl, 1997, Early Proterozoic Cu-(Au) and Fe ore deposits associated with regional NaCl metasomatism in northern Fennoscandinavia: Ore Geology Reviews, v. 12, p. 1–34.
Zurück zum Zitat Frimmel, H. E., M. S. Basei, and C. Gaucher, 2011, Neoproterozoic geodynamic evolution of SW-Gondwana: a southern African perspective: International Journal of Earth Sciences, v. 100, p. 323–354. Frimmel, H. E., M. S. Basei, and C. Gaucher, 2011, Neoproterozoic geodynamic evolution of SW-Gondwana: a southern African perspective: International Journal of Earth Sciences, v. 100, p. 323–354.
Zurück zum Zitat Frimmel, H. E., and S. Y. Jiang, 2001, Marine evaporites from an oceanic island in the Neoproterozoic Adamastor ocean: Precambrian Research, v. 105, p. 57–71. Frimmel, H. E., and S. Y. Jiang, 2001, Marine evaporites from an oceanic island in the Neoproterozoic Adamastor ocean: Precambrian Research, v. 105, p. 57–71.
Zurück zum Zitat Garnier, V., G. Giuliani, D. Ohnenstetter, A. E. Fallick, J. Dubessy, D. Banks, H. Q. Vinh, T. Lhomme, H. Maluski, A. Pecher, K. A. Bakhsh, P. Van Long, P. T. Trinh, and D. Schwarz, 2008, Marble-hosted ruby deposits from Central and Southeast Asia: Towards a new genetic model: Ore Geology Reviews, v. 34, p. 169–191. Garnier, V., G. Giuliani, D. Ohnenstetter, A. E. Fallick, J. Dubessy, D. Banks, H. Q. Vinh, T. Lhomme, H. Maluski, A. Pecher, K. A. Bakhsh, P. Van Long, P. T. Trinh, and D. Schwarz, 2008, Marble-hosted ruby deposits from Central and Southeast Asia: Towards a new genetic model: Ore Geology Reviews, v. 34, p. 169–191.
Zurück zum Zitat Garnier, V., G. Giuliani, D. Ohnenstetter, A. E. Fallick, J. Dubessy, D. Banks, H. Q. Vinh, T. Lhomme, H. Maluski, A. Pecher, K. A. Bakhsh, P. Van Long, P. T. Trinh, and D. Schwarz, 2008, Marble-hosted ruby deposits from Central and Southeast Asia: Towards a new genetic model: Ore Geology Reviews, v. 34, p. 169–191. Garnier, V., G. Giuliani, D. Ohnenstetter, A. E. Fallick, J. Dubessy, D. Banks, H. Q. Vinh, T. Lhomme, H. Maluski, A. Pecher, K. A. Bakhsh, P. Van Long, P. T. Trinh, and D. Schwarz, 2008, Marble-hosted ruby deposits from Central and Southeast Asia: Towards a new genetic model: Ore Geology Reviews, v. 34, p. 169–191.
Zurück zum Zitat Garnier, V., D. Ohnenstetter, and G. Giuliani, 2004, Fluor-rich aspidolite: a witness of evaporite implication in the genesis of ruby Nangimali (Azad-Kashmir, Pakistan) marbles (in French). Comptes Rendus Geosciences, v. 336, p. 1245–1253. Garnier, V., D. Ohnenstetter, and G. Giuliani, 2004, Fluor-rich aspidolite: a witness of evaporite implication in the genesis of ruby Nangimali (Azad-Kashmir, Pakistan) marbles (in French). Comptes Rendus Geosciences, v. 336, p. 1245–1253.
Zurück zum Zitat Gauthier, M., F. Chartrand, A. Cayer, and J. David, 2004, The Kwyjibo Cu-REE-U-Au-Mo-F Property, Quebec: A Mesoproterozoic Polymetallic Iron Oxide Deposit in the Northeastern Grenville Province: Economic Geology, v. 99, p. 1177–1196. Gauthier, M., F. Chartrand, A. Cayer, and J. David, 2004, The Kwyjibo Cu-REE-U-Au-Mo-F Property, Quebec: A Mesoproterozoic Polymetallic Iron Oxide Deposit in the Northeastern Grenville Province: Economic Geology, v. 99, p. 1177–1196.
Zurück zum Zitat Gebauer, D., H. P. Schertl, M. Brix, and W. Schreyer, 1997, 35 Ma old ultrahigh-pressure metamorphism and evidence for very rapid exhumation in the Dora Maira Massif, Western Alps: Lithos, v. 41, p. 5–24. Gebauer, D., H. P. Schertl, M. Brix, and W. Schreyer, 1997, 35 Ma old ultrahigh-pressure metamorphism and evidence for very rapid exhumation in the Dora Maira Massif, Western Alps: Lithos, v. 41, p. 5–24.
Zurück zum Zitat Giblin, A. M., and E. C. Appleyard, 1987, Uranium mobility in non-oxidizing brines: field and experimental evidence: Applied Geochemistry, v. 2, p. 285–295. Giblin, A. M., and E. C. Appleyard, 1987, Uranium mobility in non-oxidizing brines: field and experimental evidence: Applied Geochemistry, v. 2, p. 285–295.
Zurück zum Zitat Giuliani, G., A. Cheilletz, C. Arboleda, V. Carrillo, F. Rueda, and J. H. Baker, 1995, An evaporitic origin of the parent brines of Colombian emeralds; fluid inclusion and sulphur isotope evidence: European Journal of Mineralogy, v. 7, p. 151–165. Giuliani, G., A. Cheilletz, C. Arboleda, V. Carrillo, F. Rueda, and J. H. Baker, 1995, An evaporitic origin of the parent brines of Colombian emeralds; fluid inclusion and sulphur isotope evidence: European Journal of Mineralogy, v. 7, p. 151–165.
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Zurück zum Zitat Ndiaye, P. M., and J. J. Guillou, 1997, Les tourmalinites stratiformes à dravite d’origine colloïdale du Paléoprotérozoïque sénégalo-malien: Journal of African Earth Sciences & the Middle East, v. 24, p. 215–226. Ndiaye, P. M., and J. J. Guillou, 1997, Les tourmalinites stratiformes à dravite d’origine colloïdale du Paléoprotérozoïque sénégalo-malien: Journal of African Earth Sciences & the Middle East, v. 24, p. 215–226.
Zurück zum Zitat Needham, R. S., 1988, Geology of the Alligator Rivers uranium field, Northern Territory: Bulletin – Bureau of Mineral Resources, Geology & Geophysics, Australia, v. 224, p. 96 pp. Needham, R. S., 1988, Geology of the Alligator Rivers uranium field, Northern Territory: Bulletin – Bureau of Mineral Resources, Geology & Geophysics, Australia, v. 224, p. 96 pp.
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Zurück zum Zitat Newton, R. C., L. Y. Aranovich, E. C. Hansen, and B. A. Vandenheuvel, 1998, Hypersaline fluids in Precambrian deep-crustal metamorphism: Precambrian Research, v. 91, p. 41–63. Newton, R. C., L. Y. Aranovich, E. C. Hansen, and B. A. Vandenheuvel, 1998, Hypersaline fluids in Precambrian deep-crustal metamorphism: Precambrian Research, v. 91, p. 41–63.
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Zurück zum Zitat Nwe, Y. Y., and G. Morteani, 1993, Fluid evolution in the -CH4 -NaCl system during emerald mineralization at Gravelotte, Murchison Greenstone Belt, Northeast Transvaal, South Africa: Geochimica et Cosmochimica Acta, v. 57, p. 89–103. Nwe, Y. Y., and G. Morteani, 1993, Fluid evolution in the -CH4 -NaCl system during emerald mineralization at Gravelotte, Murchison Greenstone Belt, Northeast Transvaal, South Africa: Geochimica et Cosmochimica Acta, v. 57, p. 89–103.
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Zurück zum Zitat Osborn, W. L., 1989, Formation, diagenesis, and metamorphism of sulfate minerals in the Salton Sea geothermal system, California, U.S.A: Masters thesis, University of California, Riverside; Riverside, CA. Osborn, W. L., 1989, Formation, diagenesis, and metamorphism of sulfate minerals in the Salton Sea geothermal system, California, U.S.A: Masters thesis, University of California, Riverside; Riverside, CA.
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Zurück zum Zitat Parcerisa, D., M. Thiry, and J. Schmitt, 2010, Albitisation related to the Triassic unconformity in igneous rocks of the Morvan Massif (France): International Journal of Earth Sciences, v. 99, p. 527–544. Parcerisa, D., M. Thiry, and J. Schmitt, 2010, Albitisation related to the Triassic unconformity in igneous rocks of the Morvan Massif (France): International Journal of Earth Sciences, v. 99, p. 527–544.
Zurück zum Zitat Parente, C., L. Ronchi, A. Sial, J. Guillou, M. Arthaud, K. Fuzikawa, and C. Veríssimo, Ceara, 2004, Geology and geochemistry of Paleoproterozoic magnesite deposits (≈1.8Ga), State of Ceará, Northeastern Brazil: Carbonates and Evaporites, v. 19, p. 28–50. Parente, C., L. Ronchi, A. Sial, J. Guillou, M. Arthaud, K. Fuzikawa, and C. Veríssimo, Ceara, 2004, Geology and geochemistry of Paleoproterozoic magnesite deposits (≈1.8Ga), State of Ceará, Northeastern Brazil: Carbonates and Evaporites, v. 19, p. 28–50.
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Zurück zum Zitat Patrick Muffler, L. J., and D. E. White, 1969, Active Metamorphism of Upper Cenozoic Sediments in the Salton Sea Geothermal Field and the Salton Trough, Southeastern California: Geological Society of America Bulletin, v. 80, p. 157–182. Patrick Muffler, L. J., and D. E. White, 1969, Active Metamorphism of Upper Cenozoic Sediments in the Salton Sea Geothermal Field and the Salton Trough, Southeastern California: Geological Society of America Bulletin, v. 80, p. 157–182.
Zurück zum Zitat Paulick, H., and C. Breitkreuz, 2005, The Late Paleozoic felsic lava-dominated large igneous province in northeast Germany: volcanic facies analysis based on drill cores: International Journal of Earth Sciences, v. 94, p. 834–850. Paulick, H., and C. Breitkreuz, 2005, The Late Paleozoic felsic lava-dominated large igneous province in northeast Germany: volcanic facies analysis based on drill cores: International Journal of Earth Sciences, v. 94, p. 834–850.
Zurück zum Zitat Peach, C., and C. J. Spiers, 1996, Influence of crystal plastic deformation on dilatancy and permeability development in synthetic salt rock: Tectonophysics, v. 256, p. 101–128. Peach, C., and C. J. Spiers, 1996, Influence of crystal plastic deformation on dilatancy and permeability development in synthetic salt rock: Tectonophysics, v. 256, p. 101–128.
Zurück zum Zitat Peck, W. H., and J. W. Valley, 2000, Large crustal input to high δ18O anorthosite massifs of the southern Grenville Province: new evidence from the Morin Complex, Quebec: Contributions to Mineralogy and Petrology, v. 139, p. 402–417. Peck, W. H., and J. W. Valley, 2000, Large crustal input to high δ18O anorthosite massifs of the southern Grenville Province: new evidence from the Morin Complex, Quebec: Contributions to Mineralogy and Petrology, v. 139, p. 402–417.
Zurück zum Zitat Peng, Q.-M., and M. R. Palmer, 2002, The Paleoproterozoic Mg and Mg-Fe Borate Deposits of Liaoning and Jilin Provinces, Northeast China: Economic Geology, v. 97, p. 93–108. Peng, Q.-M., and M. R. Palmer, 2002, The Paleoproterozoic Mg and Mg-Fe Borate Deposits of Liaoning and Jilin Provinces, Northeast China: Economic Geology, v. 97, p. 93–108.
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Zurück zum Zitat Plimer, I. R., and T. C. Lees, 1988, Tourmaline-rich rocks associated with the submarine hydrothermal Rosebery Zn-Pb-Cu-Ag-Au deposit and granites in western Tasmania, Australia: Mineralogy & Petrology, v. 38, p. 81–103. Plimer, I. R., and T. C. Lees, 1988, Tourmaline-rich rocks associated with the submarine hydrothermal Rosebery Zn-Pb-Cu-Ag-Au deposit and granites in western Tasmania, Australia: Mineralogy & Petrology, v. 38, p. 81–103.
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Zurück zum Zitat Ramsay, C. R., and L. R. Davidson, 1970, The origin of scapolite in the regionally metamorphosed rocks of Mary Kathleen, Queensland: Contributions to Mineralogy & Petrology, v. 25, p. 41–51. Ramsay, C. R., and L. R. Davidson, 1970, The origin of scapolite in the regionally metamorphosed rocks of Mary Kathleen, Queensland: Contributions to Mineralogy & Petrology, v. 25, p. 41–51.
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Zurück zum Zitat Rubenach, M., N. Oliver, L. Fisher, and M. Bertolli, 2008, The tectonothermal and metasomatic evolution of the Mount Isa Inlier and the formation of iron oxide Cu-Au deposits: International Geological Congress, Abstracts, v. 33. Rubenach, M., N. Oliver, L. Fisher, and M. Bertolli, 2008, The tectonothermal and metasomatic evolution of the Mount Isa Inlier and the formation of iron oxide Cu-Au deposits: International Geological Congress, Abstracts, v. 33.
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Zurück zum Zitat Saigal, G. C., S. Morad, K. Bjorlykke, P. K. Egeberg, and P. Aagaard, 1988, Diagenetic albitization of detrital K-feldspar in Jurassic, Lower Cretaceous, and Tertiary clastic reservoir rocks from offshore Norway; I, Textures and origin: Journal of Sedimentary Research, v. 58, p. 1003–1013. Saigal, G. C., S. Morad, K. Bjorlykke, P. K. Egeberg, and P. Aagaard, 1988, Diagenetic albitization of detrital K-feldspar in Jurassic, Lower Cretaceous, and Tertiary clastic reservoir rocks from offshore Norway; I, Textures and origin: Journal of Sedimentary Research, v. 58, p. 1003–1013.
Zurück zum Zitat Satish-Kumar, M., J. Hermann, T. Tsunogae, and Y. Osanai, 2006, Carbonation of Cl-rich scapolite boudins in Skallen, East Antarctica: evidence for changing fluid condition in the continental crust: Journal Of Metamorphic Geology, v. 24, p. Satish-Kumar, M., J. Hermann, T. Tsunogae, and Y. Osanai, 2006, Carbonation of Cl-rich scapolite boudins in Skallen, East Antarctica: evidence for changing fluid condition in the continental crust: Journal Of Metamorphic Geology, v. 24, p.
Zurück zum Zitat Scares, D. R.,A. C. M. Ferreira, R. R. da Silva, and V. P. Ferreira, 2008, Alkali-Deficient elbaite from pegmatites of the Serido region, Borborema Province, NE Brazil: Brazilian Journal of Geology, v. 30, p. 293–296. Scares, D. R.,A. C. M. Ferreira, R. R. da Silva, and V. P. Ferreira, 2008, Alkali-Deficient elbaite from pegmatites of the Serido region, Borborema Province, NE Brazil: Brazilian Journal of Geology, v. 30, p. 293–296.
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Zurück zum Zitat Skippen, G., and V. Trommsdorff, 1986, The influence of NaCl and KCl on phase relations in metamorphosed carbonate rocks: American Journal of Science, v. 286, p. 81–104. Skippen, G., and V. Trommsdorff, 1986, The influence of NaCl and KCl on phase relations in metamorphosed carbonate rocks: American Journal of Science, v. 286, p. 81–104.
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Zurück zum Zitat Southgate, P. N., N. L. Neumann, and G. M. Gibson, 2013, Depositional systems in the Mt Isa Inlier from 1800 Ma to 1640 Ma: Implications for Zn-Pb-Ag mineralisation:Australian Journal of Earth Sciences, v. 60, p. 157–173. Southgate, P. N., N. L. Neumann, and G. M. Gibson, 2013, Depositional systems in the Mt Isa Inlier from 1800 Ma to 1640 Ma: Implications for Zn-Pb-Ag mineralisation:Australian Journal of Earth Sciences, v. 60, p. 157–173.
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Metadaten
Titel
Meta-evaporites
verfasst von
John K. Warren
Copyright-Jahr
2016
DOI
https://doi.org/10.1007/978-3-319-13512-0_14