Неоархейские санукитоиды Каpельского и Бунделкхандского кратонов: сравнение по составу, пространственному распределению и геодинамической обстановке

Кумар Батук Джоши, Александр Иванович Слабунов, Kumar Batuk Joshi, Alexander Slabunov

Аннотация


В данной работе проводится сопоставление распределения в пространстве и состава неоархейских санукитоидных массивов Карельского (Фенноскандинавский щит) и Бунделкхандского (Индийский щит) кратонов. Показано, что в обоих рассматриваемых кратонах массивы санукитоидов локализуются в линейных зонах, близких по ориентировке зеленокаменным поясам. Неоархейские (2,56–2,53 млрд лет)
санукитоиды Бунделкхандского кратона по петрохимическим особенностям сходны с аналогичными породами Центрально- и Западно-Карельской зон Карельского кратона с возрастом 2,72–2,68 млрд лет, вместе с тем они менее дифференциро-
ваны по сравнению с санукитоидами Восточно-Карельской зоны (2,74–2,73 млрд лет). Санукитоиды обоих рассматриваемых кратонов сходны по геохимическим ха-
рактеристикам и сопоставимы с субдукционными комплексами, кроме того, с ними ассоциируют близкие по возрасту островодужные вулканиты. Все это, наряду с линейным характером распределения в пространстве, позволяет рассматривать их как субдукционные образования.

Ключевые слова


санукитоиды; Карельский кратон; Бунделкхандский кратон; архей; геодинамика.

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Литература


Acharya S. K. A plate tectonic model for Proterozoic crustal evolution of Central Indian Tectonic Zone. Gondwana Geological Magazine. Special Vol. 7. 2003. P. 9-31.

Adam J., Rushmer T. O’Neil J., Francis D. Hadean greenstones from the Nuvvuagittuq fold belt and the origin of the Earth’s early continental crust. Geology. 2012. Vol. 40. P. 363–366.

Arth J. G., Hanson G. N. Quartz diorites derived by partial melting of eclogite or amphibolite at mantle depths. Contributions to Mineralogy and Petrology. 37. 1972. P. 161–174.

Balagansky V., Shchipansky A., Slabunov A. I., Gorbunov I., Mudruk S., Sidorov M., Azimov P., Egorova S., Stepanova A., Voloshin A. Archean Kuru-Vaara eclogites in the northern Belomorian Province, Fennoscandian Shield: crustal architecture, timing and tectonic implications. International Geology Review. 2015. 57. No. 11-12 P. 1543-1565.

Barton J. M. Jr., Doig R., Smith C. B., Bohlender F., Van Reenen D. D. Isotopic and REE characteristics of the intrusive charnoenderbite and enderbite geographically associated with the Matok Pluton, Limpopo Belt, southern Africa. Precambrian Research. 1992. 55. 1-4. P. 451-467.

Basu A. K. Geology of Parts of the Bundelkhand Granite Massif, Central India. In: Records, G.S.O.I. (eds), 1986. P. 61–124.

Bibikova E. V., Bogdanova S. V., Glebovitskii V. A., et al. Evolution of the Belomorian Belt: NORDSIM U-Pb zircon dating of the Chupa Paragneisses, magmatism and metamorphic stages. Petrology. 12, 3. 2004. P. 195–210.

Bibikova E. V., Kirnozova T. I., Makarov V. et al. U–Pb Geochronology and Major-Element Chemistry of a Diorite–Plagiogranitic Batholith in Northern Karelia. Geochemistry International. 35, 11. 1997. P. 1021-1027.

Bibikova E. V., Petrova A., Claesson S. The temporal evolution of sanukitoids in the Karelian Craton, Baltic Shield:an ion microprobe U–Th–Pb isotopic study of zircons. Lithos. 79. 2005. P. 129–145.

Bleeker W. The late Archean record: a puzzle in ca. 35 pieces. Lithos. 71. 2003. P. 99-134.

Brown G. C. Processes and problems in the continental lithosphere: geological history and physical implications. In: Snelling, N. (eds), Geochronology and Geological Record, Special Publication - Geological Society of London. 10. 1985. P. 326–334.

Samsonov A.V., Larionova Yu.O., Bibikova E.V., Petrova A. Yu., et al. Magnesian granitoids (sanukitoids) of the Kostomuksha area, western Karelia: Petrology, geochronology, and tectonic environment of formation. Petrology. 12, 5. 2004. P. 437-468.

Champion D.C. and Sheraton J. W. Geochemistry and Nd isotope systematics of the Archean granites of Eastern Goldfields, Yilgarn Craton, Australia: Implications for Archean crustal growth processes. Precambrian Research. 83. 1997. P. 109–132.

Chekulaev V. P., Arestova N. A., Berezhnaya N. G., Presnyakov S. L. New Data on the Age of the Oldest Tonalite–Trondhjemite Association in the Baltic Shield. Stratigraphy and Geological Correlation, 17. No. 2, 2009. P. 230–234.

Chekulaev V. P., Levchenkov O. A., Ivan’ko V. V., Arestova N. A., et al. Composition, Age, and Sm–Nd Systematics of High_Magnesium Granitoids (Sanukitoids) of the Panozero Pluton, Karelia. Geochemistry International, 41, 8. 2003. P. 741-752.

Condie K. C. TTGs and adakites: are they both slab melts? Lithos, 80. 2005. P. 33–44.

Condie K. C. How to Make a Continent: Thirty-five Years of TTG Research. In: Y. Dilek and H. Furnes (eds), Evolution of Archean Crust and Early Life. Modern Approaches in Solid Earth Sciences, 7. 2014. P. 179-194, Springer, Germany.

Condie K. C., Benn K. Archean geodynamics: similar to or different from modern geodynamics. In: Benn K, Mareschal J-C, Condie KC (eds), Archean Geodynamics and Environments Geophysical Monograph, 164. 2006. P. 47–60.

Crawford A. R. The Precambrian geochronology of Rajasthan and Bundelkhand, northern India. Candian Journal of Earth Science, 7. 1970. P. 91–110.

Daly J. S., Balagansky V. V., Timmerman M. J. et al. The Lapland-Kola Orogen: Palaeoproterozoic collision and accretion of the northern Fennoscandian lithosphere. In: Gee, D.G., Stephenson, R. A. (eds), European lithosphere dynamics. Geological Society of London Memoir, 32. 2006. P. 579–598.

De Wit M. J. On Archean granites, greenstones, cratons and tectonics: does the evidence demand a verdict? Precambrian Research, 91. 1998. P. 181- 226.

Egorova, Yu. S. The sanukitoids from Fenno-Karelian Province, Baltic Shield: geology, composition and sources. Dissertation, Institute of Geology and Geochronology, Russian Academy of Sciences. St Petersburg, 2014. 209 p. [In Russian].

Feio G. R. L., Dall'Agnol R. Geochemistry and petrogenesis of the Mesoarchean granites from the Canaã dos Carajás area, Carajás Province, Brazil: Implications for the origin of Archean granites. Lithos, 154, 2012. P. 33-52.

Foley S., Tiepolo M. and Vanucci R. Growth of early continental crust controlled by melting of amphibolite in subduction zones. Nature, 417. 2002. P. 837–840.

Foley S. A trace element perspective on Archean crust formation and on the presence or absence of Archean subduction. In: When Did Plate Tectonics Begin? In: K.C. Condie and V. Pease (edn ). Geological society of America Special Paper, 440, 2008. P. 31–50.

Fowler M. and Rollinson H. Phanerozoic sanukitoids from Caledonian Scotland: implications for Archaean subduction. Geology, 40. 2012. P. 1079–1082.

Frost C. D., Frost B. R., Chamberlain K. R., Hulsebosch T. P. The Late Archean history of the Wyoming province as recorded by granitic magmatism in the Wind River Range, Wyoming. Precambrian Research, 89. 1998. P. 145–173.

Gusev N.I., Larionov A.N. Neoarchean sanukitoids of the Anabar Shield. Proceeding of the All-Russian Conference, convened to 95th anniversary of academic L. Tauson. “The modern problems of Geochemistry”. Irkutsk, Russia. 2012. P. 51-55 [In Russian].

Guseva N. S., Lobach-Zhucenko S. B., Skublov S. G. Larionov A. N. Formation time of Panozero sanukitoids complexe (Central Kareia). In Isotopic systems and geological time. // Proceeding of IV All-Russian Conference on isotopic geology. Vol.1. St-Peterburg. 2009. P. 156-159 [In Russian].

Halla J. Late Archean high-Mg granitoids (sanukitoids) in the southern Karelian domain, eastern Finland: Pb and Nd isotopic constraints on crust-mantle interactions. Lithos, 79. 2005. P. 161–178.

Halla J., van Hunen J., Heilimo E., and Hölttä P. Geochemical and numerical constraints on Neoarchean plate tectonics. Precambrian Research, 174. 2009. P. 155–162.

Hamilton W. B. Archean magmatism and tectonics were not products of plate tectonics. Precambrian Res, 91. 1998. P. 143–179.

Hamilton W. B. Plate tectonics began in Neoproterozoic time and plumes from deep mantle have never operated. Lithos, 123. 2011. P. 1–20.

Harris L., Bédard J. Crustal Evolution and Deformation in a not-plate –tectonic archaean Earth: comparisons with Venuse. In: Dilek, Y., Furnes, H. (eds), Evolution of Archean Crust and Early Life, Modern Approaches in Solid Earth Sciences, 7, Springer, 2014. P. 215-291.

Heilimo E., Halla J. and Huhma H. Single-grain zircon U-Pb age constraints ofthe eastern and western sanukitoid zones in the Finnish part of the Karelian Province. Lithos, 2011. 121. P. 87-99.

Heilimo E., Halla J., Andersen T. and Huhma H. Neoarchean crustal recycling and mantle metasomatism: Hf–Nd–Pb–O isotope evidence from sanukitoids of the Fennoscandian shield. Precambrian Research. 2012

Heilimo E., Halla J., and Hölttä P. Discrimination and origin of the sanukitoid series: geochemical constraints from the Neoarchean western Karelian Province (Finland). Lithos, 115. 2010. P. 27–39.

Hoffmann J. E., Mu¨nker C., Naeraa T., Rosing M. T., et al. Mechanisms of Archean crust formation inferred from high-precision HFSE systematics in TTGs. Geochemica Et Cosmochemica Acta, 75, 2011. P. 4157-4178.

Hoffmann J. E., Nagel T. J., Münker C., Næraa T., et al. Constraining the process of Eoarchean TTG formation in the Itsaq Gneiss Complex, southern West Greenland. Earth and Planetary Science Letters, 388. 2014. P. 374-386.

Hölttä P., Balagansky V., Garde A. A., et al. Archean of Greenland and Fennoscandia. Episodes, 31(1). 2008. P. 1–7.

Hölttä P., Heilimo E., Huhma H., et al. The Archaean of the Karelia Province in Finland. Geological Survey of Finland. Special Paper, 54. 2012. P. 21–72.

Hölttä P., Heilimo E., Huhma H., et al. The Archaean Karelia and Belomorian Provinces, Fennoscandian Shield. In: Dilek Y., Furnes H. (eds). Evolution of Archean Crust and Early Life. Modern Approaches in Solid Earth Sciences, 7. 2014. Springer, P. 55.

Hölttä P., Lehtonen E., Lahaye Y and Sorjonen-Ward P. Metamorphic evolution of the Ilomantsi greenstone belt in the Archaean Karelia Province, eastern Finland. In: Halla J., Whitehouse M. J., Ahmad T. and Bagai Z. (eds). Crust–Mantle Interactions and Granitoid Diversification: Insights from Archaean Cratons. Geological Society, London. 2016. Special Publications, 449, doi:10.1144/SP449.7.

Huhma H., Mänttäri I., Peltonen P., et al. The age of the Archaean greenstone belts in Finland. Geological Survey of Finland. 2012. Special Paper, 54. P. 73–174.

Ivanikov V. V. Archean syenites and monzonites from Karelia. Vestnik SPSU. 1997. Series 7. Geology and Geography 1, 7. P. 11-21.

Jahn B. M., Auvray B., Shen Q. H., et al. Archean crustal evolution in China: theTaishan complex, and evidence for juvenile crustal addition from long-termdepleted mantle. Precambrian Research, 38. 1988. P. 381–403. http://dx.doi.org/10.1016/0301-9268(88)90035-6.

Jayananda M., Martin H., Peucat J-J. and Mahabaleswar B. Late Archaean crust-mantle interactions: geochemistry of LREE-enriched mantle derived magmas. Example of the Closepet batholith, southern India. Contributions to Mineralogy and Petrology, 119. 1995. P. 314–329.

Jayananda M., Moyen J.-F., Martin H., et al. Late Archaean crust-mantle interactions: geochemistry of LREE enriched mantle driven magmas. Example of the Closepet batholiths, southern India. Contributions to Mineralogy and Petrology, 119. 2000. P. 314-329.

Joshi K. B. Petrological, Geochemical and U-Pb Zircon Geochronological Studies of the Bundelkhand Granitoid Complex, Central India: Constraints on Archean Crustal Evolution. Ph. D Thesis, Department of Geology. 2014. University of Delhi, India.

Joshi K. B., Bhattacharjee J., Rai G. et al. The diversification of granitoids and plate tectonic implications at the Archaean–Proterozoic boundary in the Bundelkhand Craton, Central India. // In: Halla J., Whitehouse M. J., Ahmad T. and Bagai Z. (eds). Crust–Mantle Interactions and Granitoid Diversification: Insights from Archaean Cratons. Geological Society, London. 2016. Special Publications, 449, doi:10.1144/SP449.8.

Käpyaho A., Mänttäri I., Huhma H. Growth of Archaean crust in the Kuhmo district, eastern Finland: U-Pb and Sm-Nd isotope constraints on plutonic rocks. Precambrian Research, 146. 2006. P. 95–119.

Käpyaho A., Molnár A, F., Sorjonen-Ward P., Mänttäri I., et al. New U-Pb age constraints for the timing of gold mineralization at the Pampalo gold deposit, Archaean Hattu schist belt, eastern Finland, obtained from hydrothermally altered and recrystallised zircon. Precambrian Research, 289. 2017. P. 48–61.

Kaur P., Zeh, A. and Chaudhri N. Characterisation and U–Pb–Hf isotope record of the 3.55 Ga felsic crust from the Bundelkhand Craton, northern India. Precambrian Research, 255. 2014. P. 236–244.

Kelemen P. B., Hanghøj K., Greene A. R. One view of the geochemistry of subduction related magmatic arcs, with an emphasis on primitive andesite and lower crust. In: Davis A. M., Holland H. D. and Turekian K. K. (eds), Treatise on Geochemistry, 2. 2014. P. 749-805.

Kontinen A., Käpyaho A., Huhma H., Karhu J., Matukov D. I., et al. Nurmes paragneisses in eastern Finland, Karelian craton: provenance, tectonic setting and implications for Neoarchaean craton correlation. Precambrian Research, 152. 2007. P. 119–148.

Kovalenko A., Clemans J. D. and Savatenkov V. Petrogenetic constraints for the genesis of Archaean sanukitoid suites: geochemistry and isotopic evidence from Karelia, Baltic Shield. Lithos, 79. 2005. P. 147–160.

Kovalenko A. V., Clemens J. D., Savatenkov V.M. Sm-Nd and Rb-Sr isotopic data on the sanukitoid intrusions of Karelia, Baltic Shield: implications for their genesis and lithospheric evolution. Lithos, 79. 2005. P. 147-160.

Kulikov V. S., Svetov S. A., Slabunov A. I., et al. Geological map of Southeastern Fennoscandia (scale 1:750 000): a new approach to map compilation. Proceedings of the Karelian Research Centre RAS. Precambrian Geology Series, 2. 2017. P. 3–41, doi: 10.17076/geo444.

Laurent O., Martin H., Doucelance R., Moyen J.F., et al. Geochemistry and petrogenesis of high-K “sanukitoids” from the Bulai pluton, Central Limpopo Belt South Africa: implications for geodynamic changes at the Archaean- Proterozoic boundary. Lithos, 123. 2011. P. 73–91.

Lauri L. S., Hellström F., Bergman S., Huhma H., et al. New insights into the geological evolution of the Archean Norrbotten province, Fennoscandian shield. In Bulletin of the Geological Society of Finland, Special Volume. 2016. Abstract of the 32nd Nordic Geological Winter Meeting, Helsinki. 193.

Laurie A., Stevens G. Water present eclogite melting to produce Earth’s early felsic crust. Chemical Geology, 314–317. 2012. P. 83–95.

Li X., Zhang L., Wei C., Slabunov A. I. Metamorphic PT path and zircon U–Pb dating of Archean eclogite association in Gridino complex, Belomorian province, Russia. Precambrian Research, 268. 2015. P. 74–96.

Lobach-Zhuchenko S. B. Rollinson H. R. Chekulaev et al. The Archaean sanukitoid series of the Baltic Shield: geological setting, geochemical characteristics and implication for their origin. Lithos, 79, 2005. P. 107–128.

Lobach-Zhuchenko S. B., Chekulaev V. P., Arestova N. A., et al. Archean terranes in Karelia: geological and isotopic–geochemical evidence. Geotectonics, 34(6). 2000. P. 452–466.

Lobach-Zhuchenko S. B., Rollinson H. R., Chekulaev V. P., et al. The Archaean sanukitoid series of the Baltic Shield: geological setting, geochemical characteristics and implications for their origin. Lithos. 2005. 79. P. 107–128.

Lobach-Zhuchenko S.B., Rollinson H.R., Chekulaev, V.P., et al. Petrology of a Late Archaean, highly potassic, sanukitoid pluton from the Baltic Shield: insights into Late Archaean mantle metasomatism. Journal of Petrology, 2008. 49. P. 393–420.

Malviya V. P., Arima M., Pati J. K. and Kaneko Y. First report of metamorphosed pillow lava in central part of Bundelkhand craton – an island arc setting of possible late Archaean age. Gondwana Research, 2004. 7. P. 1338–1340.

Malviya V. P., Arima M., Pati J. K. and Kaneko. YPetrology and geochemistry of metamorphosed basaltic pillow lava and basaltic komatiite in the Mauranipur area: subduction related volcanism in the Archean Bundelkhand craton, Central India. Journal of Mineralogical and Petrological Sciences, 2006. 101. P. 199–217.

Martin H. and Moyen J.-F. Secular changes in tonalite-trondhjemite granodiorite composition as markers of the progressive cooling of Earth. Geology, 2002. 30. P. 319.

Martin H., Moyen J.-F. and Rapp R. The sanukitoids series: magmatism at the Archaean–Proterozoic transition. Earth and Environmental Science Transactions of the Royal Society of Edinburgh, 2010. 100 (for 2009). P. 15–33.

Martin H., Smithies R., Rapp R., Moyen J. and Champion D. An overview of adakite, tonalite Trondhjemite Granodiorite (TTG), and sanukitoid: relationships and some implications for crustal evolution. Lithos, 2005. 79. P. 1–24.

Meert J. G., Pandit M. K., Pradhan V. R. and Kamenov G. Preliminary report on the paleomagnetism of 1.88 Ga dykes from the Bastar and Dharwar cratons, Peninsular India. Gondwana Research, 2011. 20, P. 335–343.

Mikkola P., Lauri L.S. and Käpyaho A. Neoarchean leucogranitoids of the Kianta Complex, Karelian Province, Finland: Source characteristics and processes responsible for the observed heterogeneity. Precambrian Research, 2012. 206-207, P. 72-86.

Mikkola P., Heilimo E., Halkoaho T., Käpyaho A. The tectonomagmatic significance of Neoarchaean variably alkali-enriched gabbro and diorite intrusions of the western Karelia Province. In: Halla, J., Whitehouse, M. J., Ahmad, T. and Bagai, Z. (eds), Crust–Mantle Interactions and Granitoid Diversification: Insights from Archaean Cratons. Geological Society, 2016. London, Special Publications, 449, doi:10.1144/SP449.5.

Mikkola P., Heilimo E., Paavola J., Halkoaho T., et al. Bedrock of the southern part of Lentua complex. Geological survey of Finland. 2013. Report of Investigation, 202. 123 [In Finnish]

Mikkola P., Huhma H., Heilimo E. and Whitehouse M. Archean crustal evolution of the Suomussalmi district as part of the Kianta Complex, Karelia: Constraints from geochemistry and isotopes of granitoids. Lithos, 125, 2011. P. 287–307.

Mints M. V., Belousova E. A., Konilov A. N., Natapov et al. Mesoarchean subduction processes: 2.87 Ga eclogites from the Kola Peninsula, Russia. Geology, 38. 2010. P. 739-742.

Mints M.V., Dokukina K.A., Konilov A.N., Philippova et al. East European Craton: Early Precambrian history and 3D models of deep crustal structure. The Geological Society of America Special Paper, 2015. 510, 500.

Mondal M. E. A., Goswami J. N., Deomurari M. P. and Sharma K. K. Ion microprobe Pb207/Pb206ages of zircons from the Bundelkhand massif, northern India: implications for crustal evolution of the Bundelkhand-Aravalli protocontinent. Precambrian Research, 2002. 117. P. 85–100.

Mondal M. E. A., Sharma K. K., Rahman A. and Goswami J. N. Ion microprobe Pb207/Pb206 zircon ages for gneiss-granitoid rocks from Bundelkhand massif: evidence for Archaean components. Current Science, 74. 1998. P. 70–75.

Mondal M. E.A. and Raza A. Geochemistry of sanukitoid series granitoids from the Neoarchaean Berach granitoid batholiths, Aravalli craton, northwestern Indian shield. Current Science, 104. 2013. P. 102-108.

Moyen J. F., Martin H. and Jayananda M. Multi-element geochemical modelling of crust–mantle interactions during late-Archaean crustal growth: the Closepet granite (South India). Precambrian Research, 112. 2001. P. 87–105.

Moyen J. F., Martin H., Jayananda M. and Auvray B. Late Archaean granites; a typology based on the Dharwar Craton, India. Precambrian Research, 127. 2003. P. 103–123.

Mutanen T., Huhma H. The 3 5 Ga Siurua trondhjemite gneiss in the Archaean Pudasjärvi Granulite Belt, northern Finland. Bulletin of the Geological Society of Finland, 75. 2003. P. 51–68.

Nagel T. J., Hoffmann J. E., Münker C. Generation of Eoarchean tonalite–trondhjemite–granodiorites series from thickened mafic arc crust. Geology,. 40. 2012. P. 375–378.

Oliveira M.A., Dall’Agnol R. and de Arimate´ia Costa de Almeida J. Petrology of the Meso- Archaean Rio Maria suite and the discrimination of sanukitoid series. Lithos, 127. 2011. P. 192–209.

Pati J. K., Patel S. C., Pruseth K. L., Malviya V. P., et al. Geology and Geochemistry of giant quartz veins from the Bundelkhand Craton, central India and their implications. Journal of Earth System Science, 116 (6). 2007. P. 497-510.

Pati J. K., Raju S., Malviya V. P., et al. C. Mafic dykes of Bundelkhand craton, Central India: Field, Petrological and Geochemical characteristics. In: Srivastava, et al (eds), Indian dykes: geochemistry, geophysics and geochronology. Narosa Publishing House, 1411 New Delhi, 2008. P. 547–569.

Pati J. K., Raju S., Pruseth K. L., Magngain V. D. and Shankar R. Gold Mineralization in parts of Bundelkhand Granitoid Complex (BGC). Journal Geological Society of India, 50. 1997. P. 601–606.

Patiño Douce A. E. and Beard J. S. Dehydration melting of biotite gneiss and quartz amphibolite from 3 to 15 kbar. Journal of Petrology, 36. 1995. P. 707–738.

Patiño Douce A. E. Vapor-absent melting of tonalite at 15–32 kbar. Journal of Petrology, 46, 2005. P. 275–290.

Polat A., Kerrich R. Nd-isotope systematics of ∼2.7 Ga adakites, magnesian andesites, and arc basalts, Superior Province: evidence for shallow crustal recycling at Archean subduction zones. Earth and Planetary Science Letters, 202, 2, 2002. P. 345-360.

Pradhan V. R., Meert J. G., Pandit M. K., et al. Tectonic evolution of the Precambrian Bundelkhand craton, central India: Insights from paleomagnetic and geochronological studies on the mafic dyke swarms. Precambrian Research, 198-199, 2012. P. 51-76.

Radhakrishna B.P. Suspect Tectono-stratigraphic Terrane elements in the Indian Subcontinent. Journal Geological Society of India, 34, 1989. P. 1–24.

Rahman A. and Zainuddin S.M. Bundelkhand granites: an example of collision-related Precambrian magmatism and its relevance to the evolution of central Indian shield. Journal of Geology, 101, 1993. P. 413-419.

Ramakrishnan M. and Vaidyanathan R. Geology of India. Geological Society of India, 2008. Bangalore. Vol. 1, P. 232-233.

Ramiz M.M. and Mondal M.E.A. Petrogenesis of mafic magmatic enclaves of the Bundelkhand granitoids near Orccha, Central Indian shield: evidence from rapid crystallization. In: Halla, J., Whitehouse, M., Ahmad, T. and Bagai, Z. (eds), Crust– Mantle Interactions, Granitoid Diversification: Insights from Archaean Cratons. Geological Society, 2016. London, Special Publications, 449. First published online September 28. http://doi.org/10.1144/ SP449.6.

Rao J. M., Rao G. V. S. P., Widdowson M. and Kelley S. P. Evolution of Proterozoic mafic dyke swarms of the Bundelkhand Granite Massif, Central India. Current Science, 88, 2005. P. 502-506.

Rapp R. P. and Watson E. B. Dehydration melting of metabasalt at 8–32 kbar implications for continental growth and crust–mantle recycling. Journal of Petrology, 36. 1995. P. 891–931.

Rapp R. P., Watson E. B. and Miller C. F. Partial melting of amphibolite eclogite and the origin of Archean trondhjemites and tonalites. Precambrian Research, 51, 1991. P. 1–25.

Rapp R., Norman M., Laporte D., et al. Continent Formation in the Archean and Chemical Evolution of the Cratonic Lithosphere: Melt–Rock Reaction Experiments at 3–4 GPa and Petrogenesis of Archean Mg-Diorites (Sanukitoids). Journal of Petrology, 51. 2010. P. 1237-1266.

Reddy S. M. D., Evans A. D. Palaeoproterozoic supercontinents and global evolution: correlations from core to atmosphere. Geological Society, London, 2009. Special Publications. 323, 1-26, doi:10.1144/SP323.1.

Roday P. P. Diwan P. and Singh S. A synkinematic model of emplacement of quartz reefs and subsequent deformation patterns in the central Indian Bundelkhand batholith. Proceedings of Indian Acadamy of Science (Earth and Planetary Science), 104, 1995. P. 465–468.

Saha L., Pant N. C., Pati J. K., et al. Neoarchaean high-pressure margarite-phengitic muscovite-chlorite corona mantled corundum in quartz-free high-Mg, Al phlogopite-chlorite schists from the Bundelkhand craton, north central India. Contributions to Mineralogy and Petrology, 161. 2011. P. 511–530.

Sarkar A., Paul D.K. and Potts P. J. Geochronology and geochemistry of the Mid- Archaean trondhjemitic gneisses from the Bundelkhand Craton, Central India. In: Saha A.K. (eds), Recent Researches in Geology and Geophysics of the Precambrians, 1996. A Series, P. 76–92.

Sharma K. K. and Rahman A. The Early Archaean-Paleoproterozoic crustal growth of the Bundelkhand craton, northern Indian shield. In: M. Deb (eds), Crustal evolution and Metallogeny in the northwestern Indian Shield. Narosa Publishing House, 2000. New Delhi, P. 51-72.

Shchipansky A. A. Subduction geodynamics in Archean and formation of diamond-bearing lithospheric keels and early continental crust of cratons. Geotectonics, 46. 2012. P. 122–141. doi:10.1134/ S0016852112020057.

Shirey S. B. and Hanson G. N. Mantle-derived Archaean monzodiorites and trachyandesites. Nature, 310. 1984. P. 222–224.

Singh S. P. Geochemical signature of Archean felsic volcanism in central part of Bundelkhand Craton. International Journal of Advance Earth Sciences, 1. 2012. P. 20-32.

Singh S. P. and Bhattacharya A. R. Signature of Archaean E–W crustal-scale shears in the Bundelkhand Massif, Central India, an example of vertical ductile shearing. Earth Science India, 3. 2010. P. 217–225.

Singh V.K., Slabunov A. The Greenstone belts of the Bundelkhand craton, Central India: new geochronological data and geodynamic setting. In: Singh V. K. and Chandra R. (eds), International Association for Gondwana research Conference Series No. 16. 3rd International conference Precambrian Continental Growth and Tectonism. Jhansi, 2013. India. P. 170-171.

Singh V.K., Slabunov A. The Central Bundelkhand Archaean greenstone complex, Bundelkhand craton, Central India: geology, composition, and geochronology of supracrustal rocks. International Geology Review, 57. 2015. P. 1349–1364.

Singh V. K., Slabunov A. Two types of Archaean supracrustal belts in the Bundelkhand Craton, India: geology, geochemistry, age and implication for craton crustal evolution. // Journal Geological Society of India, 88. 2016. P. 539–548.

Sizova E., Gerya T., Brown M., Perchuk L. L. Subduction styles in the Precambrian: Insight from numerical experiments. Lithos, 116. 2010. P. 209–229.

Skjerlie K. P. and Johnston A. D. Fluid-Absent Melting Behavior of an F-Rich Tonalitic Gneiss at Mid-Crustal Pressures: Implications for the Generation of Anorogenic Granites. Journal of Petrology, 34. 1993. P. 785–815.

Slabunov А.I. Geology and geodynamics of Archean mobile belts (example from the Belomorian province of the Fennoscandian Shield). KarRC, RAS, 2008. Petrozavodsk. 298 p. (in Russian).

Slabunov A. I., Lobach-Zhuchenko S. B., Bibikova E. V., et al. The Archaean of the Baltic Shield: geology, geochronology, and geodynamic settings. Geotectonics, 40 (6). 2006a. P. 409-433.

Slabunov A. I., Lobach-Zhuchenko S. B., Bibikova E. V., et al. The Archean nucleus of the Fennoscandian (Baltic) Shield. In: European Lithosphere Dynamics. Gee D. G. and Stephenson R. A. (eds), Geological Society, London, Memoirs, 32. 2006b. P. 627–644.

Slabunov A. I., Hölttä P., Sharov N. V., Nesterova N. S. A 4-D framework of the Fennoscandian Shield earth Crust growth in Archean: synthesis of off-the-shelf geological data. In: Proceedings of the All-Russian Conference convened to celebrate the 50th anniversary of the founding of the Institute of Geology. 24–26 May. Geology of Karelia from the Archaean to the present. Karelian Research Centre (KRC), Russian Academy of Sciences (RAS), 2011a. Petrozavodsk, pp 13–21.

Slabunov A. I., Singh V. K. Archaean crustal evolution of the Fennoscandian and Bundelkhand craton: prospective. In: Singh V.K. and Ram Chandra (eds), Precambrian Continental Growth and Tectonism. Proceeding of the 2nd International Conference. 2011. P. 3-12.

Slabunov A., Kulikov V., Kulikova V., Sibelev O. Neoarchean granulite and Paleoproterozoic dykes of the Vodlozero subprovince, Karelian Craton. In: Rodinia-2013: Supercontinental Cycles and Geodynamics (Early Precamrian of the Russian Karelia). Excursion Guide. Slabunov A. (Ed). 2013. Petrozavodsk-Moscow, P. 22-41.

Slabunov А. I., Azimov P. Ya., Glebovitsky V. А., Zhang L., Kevlich V. I. Archean and Paleoproterozoic migmatization in the Belomorian Province, Fennoscandian Shield: petrology, geochronology and geodynamic setting. Doklady Earth Sciences, 467 (1). 2016. P. 71–74.

Slabunov A. I., Singh V. Joshi K. B., Li X. Paleoarchean zircons from quartzite of South Bundelkhand Supracrustal Complex: origin and implications for crustal evolution in Bundelkhand Craton, Central India. Current Science, 112, 4. 2017a. P. 794-801.

Slabunov A.I., Singh V.K., Shchiptsov V.V., Lepekhina E. N., Kevlich V.I. A new Paleoproterozoic (1.9-1.8 Ga) event in the crustal evolution of the Bundelkhand Craton, India: the results of (SHRIMP) Dating of zircons from giant quartz veins. In: Slabunov A.I., Svetov S.A., Baltibaev Sh. K. (eds). Early Precambrian vs Modern Geodynamics. 2017b. Extended Abstracts and Field Trips Guide. Petrozavodsk: KarRC RAS. P.239-241.

Slabunov А.I., Volodichev О.I., Korol N.E., Sibelev O.S., et al. Archean granulites of Karelian Craton: petrology, geochronology, geodynamics. In: Proceeding of XII All-Russian petrographic conference, 2015. Petrozavodsk: KarRC RAS, P. 503–506 (in Russian).

Smithies R. H. and Champion D. C. The Archaean high-Mg diorite suite: Links to tonalite-trondhjemite-granodiorite magmatism and implications for early Archaean crustal growth. Journal of Petrology, 41, 2000. P. 1653–1671.

Smithies R. H., Champion D. C. Archaean high-Mg diorites (sanukitoid) suite, Pilbara Craton, Western Australia. In: B. Barbarin (Editor). The Origin of granites and related rocks: Fourth Hutton Symposium Abstracts, September 1999. Clermont Ferrand, France, 190.

Smithies R. H., Champion D. C., vanKranendonk M. J. Formation of Palaeoarchean crust through infracrustal melting of enriched basalt. Earth and Planetary Science Letters, 281, 2009. P. 298–306.

Sorjonen-Ward P. An overview of structural evolution and lithic units within and intruding the late Archean Hattu schist belt Ilomantsi eastern Finland. Geological Survey of Finland, 1993. Special Paper, 17, P. 9–102.

Sorjonen-Ward P., Claoué-Long J. Preliminary note on ion probe results for zircons from the Silvevaara granodiorite, Ilomantsi, Eastern Finland. In: Autio, S. (Ed.), Geological Survey of Finland, 1993. Current Research 1991–1992, Geological Survey of Finland, Special Paper, 18, P. 25–29.

Sorjonen-Ward P., Luukkonen E. Archean rocks. In: Lehtinen M., Nurmi P. A., Rämö O.T. (eds), The Precambrian Geology of Finland—key to the evolution of the Fennoscandian Shield. 2005. Elsevier, Amsterdam, P. 19–99.

Stein H. J., Hannah J. L., Zimmerman A., Markey R. J., Sarkar S. C. and Pal A. B. A 2.5 ga porphyry cu-mo-au deposit at Malanjkhand, central India; implications for late Archean continental assembly. Precambrian Research, 134, 2004. P. 189-226.

Stern R.A. Petrogenesis of Archaean sanukitoid suite. PhD thesis, State University of New York at Stony Brook, 1989. 275 pp.

Stern R. A. and Hanson G. N. Archean high-Mg granodiorites: a derivative of light rare earth enriched monzodiorite of mantle origin. Journal of Petrology, 32. 1991. P. 201–238.

Stevenson R., Henry P., Gariépy C. Assimilation-fractional crystallization origin of Archaean sanukitoid suites: Western Superior Province, Canada. Precambrian Research, 96. 1999. P. 83-99.

Sun S.S. and McDonough W.F. Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes. Geological Society, London, 1989. Special Publications, 42. P. 313–345.

Svetov S. A. The oldest adakites of the Fennoscandian Shield. Karelian Research Centre (KRC), Russian Academy of Sciences (RAS), 2009. Petrozavodsk, 115 p. (In Russian).

Svetov S. A., Svetova А. I., Nazarova А. I. Vedlozero-Segozero greenstone belt, Central Karelia: new geochronological data and interpretation of results. Geology and useful minerals of Karelia, 13. 2010. P. 5–12 [In Russian].

Sylvester P.J. Archaean granite plutons. In: Condie, C. (ed.) Archaean Crustal Evolution. Elsevier, Amsterdam. 1994. P. 261–314.

van Hunen J. and van den Berg A. P. Plate tectonics on the early Earth: imposed by strength and buoyancy of subducted lithosphere. Lithos, 103. 2008. P. 217–235.

Verma S. K., Verma S. P., Oliveira E. P., Singh V. K. and More J. A. LA-SF-ICP-MS zircon U–Pb geochronology of granitic rocks from the central Bundelkhand greenstone complex, Bundelkhand craton, India. Journal of Asian Earth Sciences, 118. 2016. P. 125–137.

Volodichev O.I., Slabunov A.I., Bibikova E.V., et al. Archean eclogites in the Belomorian mobile belt, Baltic shield. Petrology, 12, 6. 2004. P. 540–560.

Watkins J. M., Clemens J. D. and Treloar, P. J. Archaean TTGs as sources of younger granitic magmas: melting of sodic metatonalites at 0.6–1.2 GPa. Contributions to Mineralogy and Petrology, 154. 2007. P. 91–110.

Willbold M., Hegner E., Stracke A., Rocholl A. Continental geochemical signature in dacites from Iceland and implications of early Archaean crust formation. Earth and Planetary Science Letters, 279. 2009. P. 44–52.




DOI: http://dx.doi.org/10.17076/geo841

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