Artículo

El editor solo permite decargar el artículo en su versión post-print desde el repositorio. Por favor, si usted posee dicha versión, enviela a
Consulte el artículo en la página del editor
Consulte la política de Acceso Abierto del editor

Abstract:

The Paleozoic granitoids of the Sierra de San Luis comprise the Ordovician tonalite suite (OTS; metaluminous to mildly peraluminous calcic tonalite-granodiorites) and granodiorite-granite suite (OGGS; peraluminous calcic to calc-alkaline granodiorite-monzogranites), as well as the Devonian granite suite (DGS; peraluminous alkali-calcic monzogranites) and monzonite-granite suite (DMGS; metaluminous alkali-calcic quartz monzonite-monzogranite ± granodiorite, mildly peraluminous alkalicalcic monzogranites). The OTS has relatively high K2O, CaO, and YbN and low Cr, Ni, Ba, Sr, Rb/Sr, Sr/Y, and (La/Yb)N, as well as negative Eu/Eu*, high 87Sr/86Sr (0.70850-0.71114), and unradiogenic εNd(470Ma) (-5.3 to -6.0), which preclude an origin of variably fractionated mantle melts and favour a mafic lower crustal source. The OGGS consists of two granitoids: (1) high-temperature characterized by low Al2O3/TiO2, Rb/Sr, and (La/Yb)N, a smooth negative Eu/Eu*, and relatively high CaO and (2) low-temperature with high Al2O3/TiO2 and Rb/Sr, low CaO, (La/Yb)N, and Sr/Y, and negative Eu/Eu*. Melting of metagreywackes at pressures below 10 kbar with a variable supply of water could account for the chemistry of the high-T OGGS, whereas dehydration melting of biotite-bearing metasedimentary sources at low pressures is proposed for the low temperature OGGS. Melting of crustal sources relates to a contemporaneous mafic magmatism. Devonian magmatism is characterized by high Ba, Sr, K2O, Na2O, Sr/Y, and (La/Yb)N. Sources for the DGS include metasedimentary or metatonalitic protoliths. Biotite dehydration melting triggered by the addition of heat, supplied by mantle-derived magmas, is proposed. High Ba, Sr, LREE, MgO, Cr, Ni, Zr, and V of the monzonites suggest an enriched lithospheric mantle source. Low Yb and Y and high Sr and (La/Yb)N indicate a garnet-rich residual assemblage (P ≥ 10 kbar). Melts for the peraluminous rocks may have derived from a metasedimentary or metaigneous source at lower pressures in a process dominated by biotite consumption and plagioclase in the residue. The Ordovician granitoids are synkinematic with compressive deformation related to the early stages of Famatinian convergence. The Devonian magmatism is synkinematic with a system of shear zones that were active during the Achalian cycle. © 2007 Elsevier Ltd. All rights reserved.

Registro:

Documento: Artículo
Título:Geochemical constraints on the petrogenesis of the Paleozoic granitoids of the Sierra de San Luis, Sierras Pampeanas, Argentina
Autor:de Luchi, M.G.L.; Siegesmund, S.; Wemmer, K.; Steenken, A.; Naumann, R.
Filiación:Instituto de Geocronología y Geología Isotópica, Pabellón INGEIS, 1428 Buenos Aires, Argentina
GZG, University Göttingen, Goldschmidtstr. 3, 37077 Göttingen, Germany
GeoForschungsZentrum Potsdam, Telegrafenberg, 14473 Potsdam, Germany
Palabras clave:Argentina; Geochemistry; Granitoids; Paleozoic; Sierra de San Luis; Sources; chemical composition; geochemistry; granitoid; magmatism; mantle source; Paleozoic; petrogenesis; Argentina; San Luis; Sierra de San Luis; Sierras Pampeanas; South America
Año:2007
Volumen:24
Número:2-4
Página de inicio:138
Página de fin:166
DOI: http://dx.doi.org/10.1016/j.jsames.2007.05.001
Título revista:Journal of South American Earth Sciences
Título revista abreviado:J. South Am. Earth Sci.
ISSN:08959811
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_08959811_v24_n2-4_p138_deLuchi

Referencias:

  • Anderson, J.L., Status of thermobarometry in granitic batholiths (1996) Transactions of the Royal Society of Edinburgh, 87, pp. 125-138
  • Batchelor, R.A., Bowden, P., Petrogenetic interpretation of granitoid rock series using multicationic parameters (1985) Chemical Geology, 48, pp. 43-55
  • Beard, J.S., Lofgren, G.E., Dehydration melting and water saturated melting of basaltic and andesitic greenstones and amphibolites at 1.3 and 6.9 kbar (1991) Journal of Petrology, 32, pp. 365-401
  • Boynton, W.V., Geochemistry of the rare-earth elements: meteorite studies (1984) Rare Earth Element Geochemistry, pp. 63-114. , Henderson P. (Ed), Elsevier, New York
  • Casquet, C., Baldo, E., Pankhurst, R.J., Rapela, C.W., Galindo, C., Fanning, C.M., Saavedra, J., Involvement of the Argentina Precordillera terrane in the Famatinian mobile belt: U-Pb SHRIMP and metamorphic evidence from the Sierra de Pie de Palo (2001) Geology, 29 (8), pp. 703-706
  • Cox, K.G., Bell, J.D., Pankhurst, R.J., (1979) The Interpretation of the Igneous Rocks, , Unwin Hydman Limited, London 450 pp
  • Dalla Salda, L., Cingolani, C., Varela, R., Early Paleozoic orogenic belt of the Andes in South America: Result of Laurentia-Gondwana collision (1992) Geology, 20, pp. 616-620
  • Frost, B.R., Barnes, C.G., Collins, W.J., Arculus, R.J., Ellis, D.J., Frost, C.D., A geochemical classification of the igneous rocks (2001) Journal of Petrology, 42 (11), pp. 2033-2048
  • Hauzenberger, Ch., Mogessie, A., Hoinkes, G., Felfernig, A., Bjerg, E., Kostadinoff, J., Delpino, S., Dimieri, L., Metamorphic evolution of the Sierras de San Luis, Argentina: granulite facies metamorphism related to mafic intrusions (2001) Mineralogy and Petrology, 71 (1-2), pp. 95-126
  • Helz, R., Phase relation of basalt in their melting ranges at PH2O =5 kbar. Part 2. Melt compositions (1976) Journal of Petrology, 17, pp. 139-193
  • Hildreth, W., Moorbath, S., Crustal contribution to arc-magmatism in the Andes of Central Chile (1988) Contributions to Mineralogy and Petrology, 98, pp. 455-499
  • Hughes, C.J., Spilites, keratophyres and the igneous spectrum (1973) Geological Magazine, 109, pp. 513-527
  • Johannes, W., Holtz, F., (1996) Petrogenesis and Experimental Petrology of Granitic Rocks, , Springer, Berlin 334 p
  • Kosinowski, M.H., A FORTRAN program for the improved version of mesonorm calculation (1982) Computers and GeoScience, 8 (1), pp. 111-120
  • LeMaitre, R.W., (1989) A Classification of the Igneous Rocks and Glossary of Terms, , Blackwell, Oxford 193 pp
  • López de Luchi, M.G., Enclaves en un Batolito Postectónico: Petrología de los enclaves microgranulares del Batolito de Renca (1996) Asociación Geológica Argentina, Revista, 51 (2), pp. 131-146
  • López de Luchi, M.G., Siegesmund, S., Hofmann, A., Hübner, H., Hulka, C., Mosch, S., Geological setting and composition of the Las Chacras-Potrerillos Batholith, Sierras Pampeanas, Argentina: First results (2001) Zeitschrift Der Deutschen Geologischen Gesellschaft, 152 (2-3), pp. 325-350
  • López de Luchi, M.G., Rapalini, A.E., Rossello, E., Geuna, S., Rock and Magnetic Fabric of the Renca Batholith (Sierra de San Luis, Argentina) (2002) Constraints on its emplacement, Lithos, 61, pp. 161-186
  • López de Luchi, M.G., Cerredo, M.E., Siegesmund, S., Steenken, A., Wemmer, K., Provenance and tectonic setting of the protoliths of the metamorphic complexes of Sierra de San Luis (2003) Asociación Geológica Argentina, Revista, 58, pp. 525-540
  • Ortíz Suárez, A.E., Geología y Petrología de los intrusivos de Las Aguadas, Provincia de San Luis (1996) Asociación Geológica Argentina, Revista, 51 (4), pp. 321-330
  • Ortiz Suárez, A.E., Prozzi, C., Llambías, E.J., Geología de la parte sur de la Sierra de San Luis y granitoides asociados, Argentina (1992) Estudios Geológicos, 48, pp. 269-277
  • Pankhurst, R.J., Rapela, C.W., Fanning, C.M., Age and origin of coeval TTG, I and S-type granites in the Famatinian belt of NW Argentina (2000) Transactions of the Royal Society of Edinburgh, Earth Science, 91, pp. 151-168
  • Patiño Douce, A.E., Experimental generation of hybrid silicic melts by reaction of high Al basalt with metamorphic rocks (1995) Journal of Geophysical Research, 100, pp. 623-639
  • Patiño Douce, A.E., Effects of pressure and H2O content on the composition of primary crustal melts (1996) Transactions of the Royal Society of Edinburgh, 87, pp. 1-21
  • Patiño Douce, A.E., Beard, J., Dehydration melting of biotite-gneiss and quartz-amphibolite from 3 to 15 kilobar (1995) Journal of Petrology, 36 (3), pp. 707-738
  • Patiño Douce, A.E., Harris, N., Experimental constraints on Himalaya anatexis (1998) Journal of Petrology, 39, pp. 689-710
  • Peacock, M.A., Classification of igneous rocks suites (1931) Journal of Geology, 39, pp. 54-67
  • Pearce, J.A., Sources and settings of granitic rocks (1996) Episodes, 19 (4), pp. 120-125
  • Pearce, J.A., Harris, N.B., Tindle, A.G., Trace-element discrimination diagrams for the tectonic interpretation of grantic rocks (1984) Journal of Petrology, 25, pp. 956-983
  • Quenardelle, S., Petrografía y geoquímica del plutón San José del Morro, provincia de San Luis (1995) Asociación Geológica Argentina, Revista, 50 (1-4), pp. 229-236
  • Ramos, V., Sudamerica. Un mosaico de continentes y océanos (1995) Ciencia Hoy Buenos Aires, 6, pp. 24-29
  • Rapela, C.W., Coira, B., Toselli, A., Saavedra, J., The Lower Paleozoic magmatism of southwestern Gondwana and the evolution of the Famatinian orogen (1992) International Geological Review, 34, pp. 1081-1142
  • Rapp, P.P., Watson, E.B., Dehydration melting of metabasalts at 8-32 kbar: implication for continental growth and crustal recycling (1995) Journal of Petrology, 36, pp. 891-931
  • Rapp, P.P., Watson, E.B., Miller, C., Partial melting of amphibolite/eclogite and the origin of Archean throndhjemites and tonalites (1991) Precambrian Research, 51, pp. 1-25
  • Rushmer, T., An experimental deformation study of partially molten amphibolite: Application to low-melt fraction segregation (1995) Journal of Geophysical Research, 100, pp. 15681-15695
  • Sato, A.M., González, P., Llambías, E., Evolución del orógeno Famatiniano en la Sierra de San Luis: magmatismo de arco, deformación y metamorfismo de bajo a alto grado (2003) Asociación Geológica Argentina, Revista, 58 (4), pp. 487-504
  • Sato, A.M., González, P.D., Basei, M.A.S., Passarelli, C.R., Sato, K., Vlach, S., Varela, R., Llambías, E.J., The Famatinian orogeny of western Sierra de San Luis, Argentina (2004) Simposio 40 Anos de Geocronología no Brasil. Boletim de resumos, p. 83
  • Shand, S.J., (1943) The Eruptive Rocks. second ed., , Wiley, New York 444p
  • Siegesmund, S., Steenken, A., López de Luchi, M.G., Wemmer, K., The Las Chacras-Potrerillos Batholith: Structural evidence on its emplacement and timing of the Intrusion (2004) International Journal of Earth Sciences, 93, pp. 23-43
  • Skjerlie, K.P., Johnston, A.D., Vapour absent melting at 10 kbar of a biotite and amphibole bearing tonalite gneiss: implications for the generation of A-type granites (1992) Geology, 20, pp. 263-266
  • Skjerlie, K.P., Pedersen, R.B., Wennberg, O.P., de la Rosa, J., Volatile phase fluxed anatexis of metasediments during late Caledonian ophiolite obduction: evidence from the Sogneskollen Granitic Complex, west Norway (2000) Journal of the Geological Society of London, 157, pp. 1199-1213
  • Steenken, A., Wemmer, K., López de Luchi, M.G., Siegesmund, S., Pawlig, S., Crustal provenance and cooling of the basement complexes of the Sierra de San Luis: An insight into the tectonic history of the proto-Andean margin of Gondwana (2004) Gondwana Research, 7 (4), pp. 1171-1195
  • Steenken, A., Siegesmund, S., López de Luchi, M.G., Wemmer, K., Frei, R., New Constraints on the Famatinian Geodynamic Evolution of the proto-Andean Margin of Gondwana (Sierra de San Luis/Argentina) (2006) Journal Geological Society of London, 163, pp. 965-982
  • Stevens, G., Clemens, J.D., Droop, G.T.R., Melt production during granulite facies anatexis: experimental data from primitive metasedimentary protoliths (1997) Contributions to Mineralogy and Petrology, 128, pp. 352-370
  • Stevenson, R., Henry, P., Gariepy, C., Assimilation-fractional crystallization origin of the Archean sanukitoid suites: western Superior Province, Canada (1999) Precambrian Research, 96, pp. 83-99
  • Storre, B., Karotke, E., Experimental data on melting reactions of muscovite + quartz in the system K2O-Al2O3-SiO2-H2 O to 20 kbar water pressure (1972) Contributions to Mineralogy and Petrology, 36, pp. 343-345
  • Sylvester, P.J., Post-collisional strongly peraluminous granites (1998) Lithos, 45, pp. 29-44
  • Thomas, W., Astini, R., Ordovician accretion of the Argentine Precordillera terrane to Gondwana: a review (2003) Journal of South American Earth Sciences, 16 (1), pp. 67-79
  • Thompson, A.B., Connolly, J.A.D., Melting of the continental crust: Some thermal and petrological constraints on anatexis in continental collision zones and other tectonic settings (1995) Journal of Geophysical Research, 100, pp. 15565-15579
  • Vielzeuf, D., Montel, J.M., Partial melting of aluminum metagreywackes. Part I: fluid absent experiment and phase relationships (1994) Contributions to Mineralogy and Petrology, 117, pp. 375-393
  • von Gosen, W., The Phyllite and Micaschist Group with the associated intrusions in the Sierra de San Luis (Sierras Pampeanas/Argentina)-structural and metamorphic relations (1998) Journal of South American Earth Sciences, 11 (1), pp. 79-109
  • von Gosen, W., Transpressive deformation in the southwestern part of the Sierra de San Luis (Sierras Pampeanas, Argentina) (1998) Journal of South American Earth Sciences, 11 (3), pp. 233-264
  • von Gosen, W., Loske, W., Prozzi, C.R., New isotopic dating of intrusive rocks in the Sierra de San Luis (Argentina): implications for the geodynamic history of the Eastern Sierras (2002) Journal of South American Earth Sciences, 15, pp. 237-250
  • Watson, B.E., Harrison, M.T., Zircon saturation revisited: temperature and compositional effects in a variety of crustal magma types (1983) Earth Planetary Science Letters, 64, pp. 295-304
  • Zuleger, E., Erzinger, J., Determination of the REE and Y in silicate materials with ICP-AES (1988) Fresenius Z. Anal. Chem., 332, pp. 140-143

Citas:

---------- APA ----------
de Luchi, M.G.L., Siegesmund, S., Wemmer, K., Steenken, A. & Naumann, R. (2007) . Geochemical constraints on the petrogenesis of the Paleozoic granitoids of the Sierra de San Luis, Sierras Pampeanas, Argentina. Journal of South American Earth Sciences, 24(2-4), 138-166.
http://dx.doi.org/10.1016/j.jsames.2007.05.001
---------- CHICAGO ----------
de Luchi, M.G.L., Siegesmund, S., Wemmer, K., Steenken, A., Naumann, R. "Geochemical constraints on the petrogenesis of the Paleozoic granitoids of the Sierra de San Luis, Sierras Pampeanas, Argentina" . Journal of South American Earth Sciences 24, no. 2-4 (2007) : 138-166.
http://dx.doi.org/10.1016/j.jsames.2007.05.001
---------- MLA ----------
de Luchi, M.G.L., Siegesmund, S., Wemmer, K., Steenken, A., Naumann, R. "Geochemical constraints on the petrogenesis of the Paleozoic granitoids of the Sierra de San Luis, Sierras Pampeanas, Argentina" . Journal of South American Earth Sciences, vol. 24, no. 2-4, 2007, pp. 138-166.
http://dx.doi.org/10.1016/j.jsames.2007.05.001
---------- VANCOUVER ----------
de Luchi, M.G.L., Siegesmund, S., Wemmer, K., Steenken, A., Naumann, R. Geochemical constraints on the petrogenesis of the Paleozoic granitoids of the Sierra de San Luis, Sierras Pampeanas, Argentina. J. South Am. Earth Sci. 2007;24(2-4):138-166.
http://dx.doi.org/10.1016/j.jsames.2007.05.001