Abstract
The enrichment of manganese in peraluminous (S-type) granitic melts beginning with the anatexis of metapelitic rock and ending with the crystallization of highly evolved pegmatites is explained using experimentally derived mineral-melt partition coefficients and solubility data for Mn-rich garnet. Mineral-melt partition coefficients for Fe, Mg, and Mn between garnet, cordierite, tourmaline, and peraluminous, B-bearing hydrous granitic melt were measured between 650 and 850 °C at 200 MPaH2O. The compositions of garnet and tourmaline synthesized in these experiments are similar to those found in nature. Garnets evolve from Sps51Alm23Prp25 to Sps81Alm15Prp4 with decreasing temperature. The Mn content of cordierite increases with decreasing temperature. The composition of tourmaline does not vary with temperature. Partition coefficients, DMα/L, and exchange coefficients,
A Rayleigh fractionation model constitutes a test of the partition coefficients reported in this manuscript. The starting composition for the model is that of a liquid (melt inclusions) from an anatectic S-type source. Normative modes of cordierite and biotite are calculated from that composition and are similar to modes of these minerals in natural occurrences. The model consists of crystallization of a cordierite-biotite granite from 850 to 650 °C. The model predicts that ~95% crystallization of the starting composition is required to reach saturation in spessartine-rich garnet at near-solidus temperatures. The model, therefore, is consistent with the occurrence of spessartine as restricted to highly fractionated granite-pegmatite systems at the end stages of magmatism.
Acknowledgments
We thank George B. Morgan VI for leading the first author through the development of electron microbeam methods, useful discussions on the design, documentation, interpretation of experiments, and for editorial revisions on several drafts of the manuscript. Thanks go to Calvin Miller, Victoria Maneta, and two anonymous reviewers for their thoughtful and constructive reviews and to Associate Editor Don Baker for handling of the manuscript.
Funding
This study was funded in part by NSF grants EAR-0946322 and EAR-1623110 to D.L. The electron microprobe laboratory at OU was created by DOE grant DE-FG22-87FE1146, with upgrades from NSF EAR-8720498, EAR-9404658, EAR-0649001, and EAR-1401940, and continuing support from the Vice President of Research at OU.
References cited
Acosta-Vigil, A., London, D., Morgan, G.B. IV, and Dewers, T.A. (2003) Solubility of excess alumina in hydrous granitic melts in equilibrium with peraluminous minerals at 700-800°C and 200 MPa, and applications of the aluminum saturation index. Contributions to Mineralogy and Petrology, 146, 100–119.10.1007/s00410-003-0486-6Suche in Google Scholar
Acosta-Vigil, A., Cesare, B., London, D., and Morgan, G.B. (2007) Microstructures and composition of melt inclusions in a crustal anatectic environment, represented by metapelitic enclaves within El Hoyazo dacites, SE Spain. Chemical Geology, 237, 450–465.10.1016/j.chemgeo.2006.07.014Suche in Google Scholar
Acosta-Vigil, A., Buick, I.S., Hermann, J., Cesare, B., Rubatto, D., London, D., and Morgan, G.B. (2010) Mechanisms of crustal anatexis: a geochemical study of partially melted metapelitic enclaves and host dacite, SE Spain. Journal of Petrology, 51, 785–821.10.1093/petrology/egp095Suche in Google Scholar
Baker, L.R., and Rutherford, M. J. (1996) The effect of dissolved water on the oxidation state of silicic melts. Geochimica et Cosmochimica Acta, 60, 2179–2187.10.1016/0016-7037(96)00090-7Suche in Google Scholar
Bea, F. (1996) Controls on the trace element composition of crustal melts. In M. Brown, P.A. Candela, D.L. Peck, W.E. Stephens, R. J. Walker, and E.-A. Zen, Eds., The third Hutton symposium on the origin of granites and related rocks, pp. 33–41. Geological Society of America Special Paper.10.1130/0-8137-2315-9.33Suche in Google Scholar
Bea, F., Pereira, M.D., Corretge, L.G., and Fershtater, G.B. (1994) Differentiation of strongly peraluminous, perphosphorous granites: The Pedrobernardo pluton, central Spain. Geochimica et Cosmochimica Acta, 58, 2609–2627.10.1016/0016-7037(94)90132-5Suche in Google Scholar
Beattie, P., Drake, M., Jones, J., Leeman, W., Longhi, J., McKay, G., Nielsen, R., Palme, H., Shaw, D., Takahashi, E., and others. (1993) Terminology for trace-element partitioning. Geochimica et Cosmochimica Acta, 57, 1605–1606.10.1016/0016-7037(93)90015-OSuche in Google Scholar
Berndt, J., Koepke, J., and Holtz, F. (2005) An experimental investigation of the influence of water and oxygen fugacity on differentiation of MORB at 200 MPa. Journal of Petrology, 46, 135–167.10.1093/petrology/egh066Suche in Google Scholar
Caffe, P.J., Trumbull, R.B., and Siebel, W. (2012) Petrology of the Coyaguayma ignimbrite, northern Puna of Argentina: Origin and evolution of a peraluminous high-SiO2 rhyolite magma. Lithos, 134-135, 179–200.10.1016/j.lithos.2011.12.013Suche in Google Scholar
Cameron, E.N., Jahns, R.H., McNair, A.H., and Page, L.R. (1949) Internal structure of granitic pegmatites. Economic Geology Monograph 2.10.5382/Mono.02Suche in Google Scholar
Černý, P., Meintzer, R.E., and Anderson, A.J. (1985) Extreme fractionation in rare-element granitic pegmatites: Selected examples of data and mechanisms. Canadian Mineralogist, 23, 381–421.Suche in Google Scholar
Černý, P., Chapman, R., Schreyer, W., Ottolini, L., Bottazzi, P., and McCammon, C.A. (1997) Lithium in sekaninaite from the type locality, Dolni Bory, Czech Republic. Canadian Mineralogist, 35, 167–173.Suche in Google Scholar
Černý, P., London, D., and Novak, M. (2012) Granitic pegmatites as reflections of their sources. Elements, 8, 289–294.10.2113/gselements.8.4.289Suche in Google Scholar
Chappell, B.W., and White, A.J.R. (2001) Two contrasting granite types: 25 years later. Australian Journal of Earth Sciences, 48, 489–499.10.1046/j.1440-0952.2001.00882.xSuche in Google Scholar
Christiansen, E.H., Bikun, J.V., Sheridan, M.F., and Burt, D.M. (1984) Geochemical evolution of topaz rhyolites from the Thomas Range and Spor Mountain, Utah. American Mineralogist, 69, 223–236.Suche in Google Scholar
Clemens, J.D., and Wall, V.J. (1981) Origin and crystallization of some peraluminous (S-type) granitic magmas. Canadian Mineralogist, 19, 111–131.Suche in Google Scholar
Coira, B., Kay, S.M., Viramonte, J.G., Kay, R.W., and Galli, C. (2018) Origin of late Miocene peraluminous Mn-rich garnet-bearing rhyolitic ashes in the Andean Foreland (Northern Argentina). Journal of Volcanology and Geothermal Research.10.1016/j.jvolgeores.2018.08.020Suche in Google Scholar
Dasgupta, H.C., Seifert, F., and Schreyer, W. (1974) Stability of manganocordierite and related phase equilibria in part of the system MnO-Al2O3-SiO2-H2O. Contributions to Mineralogy and Petrology, 43, 275–294.10.1007/BF00373484Suche in Google Scholar
Dwivedi, S.B., Mohan, A., and Lal, R.K. (1998) Recalibration of the Fe-Mg exchange reaction between garnet and cordierite as a thermometer. European Journal of Mineralogy, 10, 281–289.10.1127/ejm/10/2/0281Suche in Google Scholar
Evensen, J.M., and London, D. (2003) Experimental partitioning of Be, Cs, and other trace elements between cordierite and felsic melt, and the chemical signature of S-type granite. Contributions to Mineralogy and Petrology, 144, 739–757.10.1007/s00410-002-0426-xSuche in Google Scholar
Ewart, A., and Griffin, W.L. (1994) Application of proton-microprobe data to trace-element partitioning in volcanic-rocks. Chemical Geology, 117, 251–284.10.1016/0009-2541(94)90131-7Suche in Google Scholar
Frost, B.R., Barnes, C.G., Collins, W.J., Arculus, R.J., Ellis, D.J., and Frost, C.D. (2001) A geochemical classification for granitic rocks. Journal of Petrology, 42, 2033–2048.10.1093/petrology/42.11.2033Suche in Google Scholar
Grew, E.S., Locock, A.J., Mills, S.J., Galuskina, I.O., Galuskin, E.V., and Hålenius, U. (2013) IMA report: Nomenclature of the garnet supergroup. American Mineralogist, 98, 785–811.10.2138/am.2013.4201Suche in Google Scholar
Henry, D.J., Novák, M., Hawthorne, F.C., Ertl, A., Dutrow, B.L., Uher, P., and Pezzotta, F. (2011) Nomenclature of the tourmaline-supergroup minerals. American Mineralogist, 96, 895–913.10.2138/am.2011.3636Suche in Google Scholar
Higuchi, H., and Nagasawa, H. (1969) Partition of trace elements between rock-forming minerals and the host volcanic rocks. Earth and Planetary Science Letters, 7, 281–287.10.1016/0012-821X(69)90066-1Suche in Google Scholar
Holdaway, M.J. (2004) Optimization of some key geothermobarometers for pelitic metamorphic rocks. Mineralogical Magazine, 68, 1–14.10.1180/0026461046810167Suche in Google Scholar
Huebner, J.S., and Sato, M. (1970) The oxygen fugacity-temperature relationships of manganese oxide and nickel oxide buffers. American Mineralogist, 55, 934–952.Suche in Google Scholar
Icenhower, J.P. (1995) Experimental determination of element behavior in silicic systems during hydrous partial fusion. University of Oklahoma, Norman, U. S.A.Suche in Google Scholar
Icenhower, J.P., and London, D. (1995) An experimental study of element partitioning among biotite, muscovite, and coexisting peraluminous silicic melt at 200 MPa (H2O). American Mineralogist, 80, 1229–1251.10.2138/am-1995-11-1213Suche in Google Scholar
Janoušek, V., Moyen, J.F., Martin, H., Erban, V., and Farrow, C. (2015) Geochemical Modelling of Igneous Processes—Principles and Recipes in R Language: Bringing the power of R to a geochemical community. Springer-Verlag.10.1007/978-3-662-46792-3Suche in Google Scholar
Jobin-Bevans, S., and Černý, P. (1998) The beryllian cordierite + beryl + spessartine assemblage, and secondary beryl in altered cordierite, Greer Lake Granitic Pegmatites, Southeastern Manitoba. Canadian Mineralogist, 36, 447–462.Suche in Google Scholar
Laurs, B.M., and Knox, K. (2001) Spessartine garnet from Ramona, San Diego County, California. Gems & Gemology, 37, 278–295.10.5741/GEMS.37.4.278Suche in Google Scholar
London, D. (2008) Pegmatites. Special publication, Canadian Mineralogist, vol. 10, 347 p.10.1016/B978-0-12-409548-9.12489-3Suche in Google Scholar
London, D., and Burt, D.M. (1982) Alteration of spodumene, montebrasite and lithiophilite in pegmatites of the White Picacho district, Arizona. American Mineralogist, 67, 97–113.Suche in Google Scholar
London, D., Wolf, M.B., Morgan, G.B. VI, and Garrido, M.G. (1999) Experimental silicate–phosphate equilibria in peraluminous granitic magmas, with a case study of the Alburquerque Batholith at Tres Arroyos, Badajoz, Spain. Journal of Petrology, 40, 215–240.10.1093/petroj/40.1.215Suche in Google Scholar
London, D., Evensen, J.M., Fritz, E.A., Icenhower, J.P., Morgan, G.B., and Wolf, M.B. (2001) Enrichment and accomodation of manganese in granite-pegmatite systems. In Eleventh Annual V.M. Goldscmidt Conference p. abstract no. 3369. Hot Springs, Virginia.Suche in Google Scholar
London, D., Morgan, G.B., and Acosta-Vigil, A. (2012a) Experimental simulations of anatexis and assimilation involving metapelite and granitic melt. Lithos, 153, 292–307.10.1016/j.lithos.2012.04.006Suche in Google Scholar
London, D., Morganvi, G.B., Paul, K.A., and Guttery, B.M. (2012b) Internal evolution of miarolitic granitic pegmatites at the little three Mine, Ramona, California, USA. Canadian Mineralogist, 50, 1025–1054.10.3749/canmin.50.4.1025Suche in Google Scholar
Lucci, F., Rossetti, F., Becchio, R., Theye, T., Gerdes, A., Opitz, J., Baez, W., Bardelli, L., De Astis, G., Viramonte, J., and others. (2018) Magmatic Mn-rich garnets in volcanic settings: Age and longevity of the magmatic plumbing system of the Miocene Ramadas volcanism (NW Argentina). Lithos.10.1016/j.lithos.2018.10.016Suche in Google Scholar
Mahood, G.A., and Hildreth, E.W. (1983) Large partition coefficients for trace elements in high-silica rhyolites. Geochimica et Cosmochimica Acta, 47, 11–30.10.1016/0016-7037(83)90087-XSuche in Google Scholar
Maner, J.L., London, D., and Morgan, G.B. (2013) Toward an experimentally calibrated garnet-tourmaline geothermometer. In Geological Society of America Abstracts with Programs p. 17. Austin, Texas.Suche in Google Scholar
Maner, J.L., London, D., and Morgan, G.B. (2014) Elemental partioning and zoning in tourmaline: An experimental investigation. In Goldscmidt Conference Abstracts. Sacramento, California.Suche in Google Scholar
Matsui, Y., Onuma, N., Nagasawa, H., Higuchi, H., and Banno, S. (1977) Crystal structure control in trace element partition between crystal and magma. Tectonics, 100, 315–324.10.3406/bulmi.1977.7155Suche in Google Scholar
Miller, C.F., and Stoddard, E.F. (1981) The role of manganese in the paragenesis of magmatic garnet: An example from the Old Woman-Piute Range, California. The Journal of Geology, 89, 233–246.10.1086/628582Suche in Google Scholar
Moore, G., Righter, K., and Carmichael, I.S.E. (1995) The effect of dissolved water on the oxidation state of iron in natural silicate liquids. Contributions to Mineralogy and Petrology, 120.10.1007/BF00287114Suche in Google Scholar
Morgan, G.B. (2016) A spreadsheet for calculating normative mole fractions of end-member species for Na-Ca-Li-Fe2+-Mg-Al tourmalines from electron microprobe data. American Mineralogist, 101, 111–119.10.2138/am-2016-5392Suche in Google Scholar
Morgan, G.B., and London, D. (1996) Optimizing the electron microprobe analysis of hydrous alkali aluminosilicate glasses. American Mineralogist, 81, 1176–1185.10.2138/am-1996-9-1016Suche in Google Scholar
Morgan, G.B., and London, D. (1999) Crystallization of the Little Three layered pegmatite-aplite dike, Ramona District, California. Contributions to Mineralogy and Petrology, 136, 310–330.10.1007/s004100050541Suche in Google Scholar
Morgan, G.B., and London, D. (2005) Effect of current density on the electron microprobe analysis of alkali aluminosilicate glasses. American Mineralogist, 90, 1131–1138.10.2138/am.2005.1769Suche in Google Scholar
Mukhopadhyay, B., and Holdaway, M.J. (1994) Cordierite-garnet-sillimanite-quartz equilibrium: I. New experimental calibration in the system FeO-Al2O3-SiO2-H2O and certain P-T-XH2O relations. Contributions to Mineralogy and Petrology, 116, 462–472.10.1007/BF00310912Suche in Google Scholar
Müller, A., Seltmann, R., Halls, C., Siebel, W., Dulksi, P., Jeffries, T., Spratt, J., and Kronz, A. (2006) The magmatic evolution of the Land’s End Pluton, Cornwall, and associated pre-enrichment of metals. Ore Geology Reviews, 28, 329–367.10.1016/j.oregeorev.2005.05.002Suche in Google Scholar
Müller, A., Kearsley, A., Spratt, J., and Seltmann, R. (2012) Petrogenetic implications of magmatic garnet in granitic pegmatites from Southern Norway. Canadian Mineralogist, 50, 1095–1115.10.3749/canmin.50.4.1095Suche in Google Scholar
Nash, W.P., and Crecraft, H.R. (1985) Partition coefficients for trace elements in silicic magmas. Geochimica et Cosmochimica Acta, 49, 309–322.10.1016/0016-7037(85)90231-5Suche in Google Scholar
Pereira, M.D., and Bea, F. (1994) Cordierite-producing reactions in the Pena Negra complex, Avila batholith, central Spain: The key role of cordierite in low-pressure anatexis. Canadian Mineralogist, 31, 763–780.Suche in Google Scholar
Phillips, G.N., Wall, V.J., and Clemens, J.D. (1981) Petrology of the Strathbogie batholith: a cordierite-bearing granite. Canadian Mineralogist, 19, 47–63.Suche in Google Scholar
Pouchou, J.L., and Pichoir, F. (1985) “PAP” (φ-ρ-z) correction procedure for improved quantitative microanalysis. In Microbeam Analysis pp. 104–106. San Francisco Press, California.Suche in Google Scholar
Puziewicz, J., and Johannes, W. (1988) Phase equilibria and compositions of Fe-Mg-Al minerals and melt in water saturated peraluminous granitic systems. Contributions to Mineralogy and Petrology, 100, 156–168.10.1007/BF00373582Suche in Google Scholar
Roeder, P.L., and Emslie, R.F. (1970) Olivine-liquid equilibrium. Contributions to Mineralogy and Petrology, 29, 275–289.10.1007/BF00371276Suche in Google Scholar
Romer, R.L., Kirsch, M., and Kroner, U. (2011) Geochemical signature of Ordovician Mn-rich sedimentary rocks on the Avalonian shelf. Canadian Journal of Earth Sciences, 48, 703–718.10.1139/e10-092Suche in Google Scholar
Roy, S. (1997) Genetic diversity of manganese deposition in the terrestrial geological record, Special Publication, 5-27 p. Geological Society, London.10.1144/GSL.SP.1997.119.01.02Suche in Google Scholar
Shearer, C.K., Papike, J.J., and Jolliff, B.L. (1992) Petrogenetic links among granites and pegmatites in the Harney Peak rare-element granite-pegmatite system, Black Hills, South Dakota. Canadian Mineralogist, 30, 785–809.Suche in Google Scholar
Simmons, W.B., Foord, E.E., Falster, A.U., and King, V.T. (1996) Evidence for an anatectic origin of granitic pegmatites, western Maine, USA. In Geological Society of America Abstracts with Programs p, 27, 411.Suche in Google Scholar
Stevens, G., Villaros, A., and Moyen, J.F. (2007) Selective peritectic garnet entertainment as the origin of geochemical diversity in S-type granites. Geology, 35, 9–12.10.1130/G22959A.1Suche in Google Scholar
Stewart, D.B. (1978) Petrogenesis of lithium-rich pegmatites. American Mineralogist, 63, 970–980.Suche in Google Scholar
Strong, D.F., and Hammer, S.K. (1981) The leucogranites of southern Brittany: origin by faulting, frictional heating, fluid flux and fractional melting. Canadian Mineralogist, 19, 163–176.Suche in Google Scholar
Taylor, J.F., and Wall, V.J. (1992) The behavior of tin in granitoid magmas. Economic Geology, 87, 403–420.10.2113/gsecongeo.87.2.403Suche in Google Scholar
Ulmer, P. (1989) The dependence of the Fe2+-Mg cation-partitioning between olivine and basaltic liquid on pressure, temperature, and composition—An experimental study to 30 kbars. Contributions to Mineralogy and Petrology, 101, 261–273.10.1007/BF00375311Suche in Google Scholar
van Hinsberg, V.J. (2011) Preliminary experimental data on trace-element partitioning between tourmaline and silicate melt. Canadian Mineralogist, 49, 153–163.10.3749/canmin.49.1.153Suche in Google Scholar
van Hinsberg, V.J., and Schumacher, J.C. (2009) The geothermobarometric potential of tourmaline, based on experimental and natural data. American Mineralogist, 94, 761–770.10.2138/am.2009.3022Suche in Google Scholar
Villaseca, C., and Barbero, L. (1994) Chemical variability of Al-Ti-Fe-Mg minerals in peraluminous granitoid rocks from Central Spain. European Journal of Mineralogy, 6, 691–710.10.1127/ejm/6/5/0691Suche in Google Scholar
Villaseca, C., Barbero, L., and Rogers, G. (1998) Crustal origin of Hercynian peraluminous granitic batholiths of Central Spain: petrological, geochemical amd isotopes (Sr, Nd) contsraints. Lithos, 43, 55–79.10.1016/S0024-4937(98)00002-4Suche in Google Scholar
Visonà, D., and Lombardo, B. (2002) Two-mica and tourmaline leucogranites from the Everest-Makalu region (Nepal–Tibet). Himalayan leucogranite genesis by isobaric heating? Lithos.10.1016/S0024-4937(02)00112-3Suche in Google Scholar
White, A.J.R., Allen, C.M., Beams, S.D., Carr, P.F., Champion, D.C., Chappell, B.W., Wyborn, D., and Wyborn, L.A.I. (2001) Granite suites and supersuites of Eastern Australia. Australian Journal of Earth Sciences, 48, 515–530.10.1046/j.1440-0952.2001.00874.xSuche in Google Scholar
Whitney, D.L., and Evans, B.W. (2010) Abbreviations for names of rock-forming minerals. American Mineralogist, 95, 185–187.10.2138/am.2010.3371Suche in Google Scholar
Wolf, M.B., and London, D. (1997) Boron in granitic magmas: stability of tourmaline in equilibrium with biotite and cordierite. Contributions to Mineralogy and Petrology, 130, 12–30.10.1007/s004100050346Suche in Google Scholar
Wolf, M.B., London, D., and Morgan, G.B. (1994) Effects of boron on the solubility of cassiterite and tantalite in granitic liquids. In Geological Society of America Abstracts with Programs.Suche in Google Scholar
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Artikel in diesem Heft
- Crossroads in Earth and Planetary Materials
- Computer modeling of apparently straight bond angles: The intriguing case of all-silica ferrierite
- Composite materials based on zeolite stilbite from Faroe Islands for the removal of fluoride from drinking water
- The Italian Solfatara as an analog for Mars fumarolic alteration
- Change of crackling noise in granite by thermal damage: Monitoring nuclear waste deposits
- Constraining the timing and character of crustal melting in the Adirondack Mountains using multi-scale compositional mapping and in-situ monazite geochronology
- Melting in the Fe-FeO system to 204 GPa: Implications for oxygen in Earth’s core
- Controls on tetrahedral Fe(III) abundance in 2:1 phyllosilicates
- Stability, composition, and crystal structure of Fe-bearing Phase E in the transition zone
- Enrichment of manganese to spessartine saturation in granite-pegmatite systems
- Al and Si diffusion in rutile
- Sound velocity of neon at high pressures and temperatures by Brillouin scattering
- A Cr3+ luminescence study of natural topaz Al2SiO4(F,OH)2 up to 60 GPa
- Two generations of exsolution lamellae in pyroxene from Asuka 09545: Clues to the thermal evolution of silicates in mesosiderite
- Crystallographic and fluid compositional effects on the halogen (Cl, F, Br, I) incorporation in pyromorphite-group minerals
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