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Petrogenesis of alkaline rocks from Murud-Janjira, in the Deccan Traps, Western India

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Abstract

A late-stage rift-related tholeiite-alkalic suite of igneous intrusions cut the Deccan Traps lavas at the western Indian continental margin. The suite comprises intrusives that can be grouped into ten lithotypes on the basis of their mutual relationships. Tholeiitic types predate the alkaline rocks and greatly predominate, however, the alkaline members exhibit more diversity in mineralogy and chemistry, and are amongst the rare magmatic rocks from the Deccan that host both mantle and lower crustal xenoliths. The mineralogy of most rock types is dominated by clinopyroxene. The diversity of the alkaline rocks could be mainly accounted for by fractional crystallization and mixing between evolved and primitive melts under varying P-T conditions. Sodic and potassic lamprophyres are amongst the most primitive samples with high Mg #, FeO/MgO < 1, high Cr and also with relatively high Ba, Sr, Zr and Nb. They are the most deeply derived magmas within the Deccan Traps as is evident from the mantle and lower crustal xenoliths entrained by them. They possibly represent low degree melts of incompatible element-enriched mantle source rocks. The nephelinites are strongly porphyritic and despite their high Mg #s can be regarded as evolved magmas that have been responsible for the formation of the tephriphonolite daughter. The nephelinites have undergone contamination by lower crustal granulites. The composite intrusions of microdiorites with their complexly zoned mineralogy dominated by plagioclase and amphiboles/micas represent hybrid rocks that have resulted from mixing between tholeiitic and trachytic melts partly at depth and partly at shallow crustal levels.

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References

  • Agarwal JK, Rama SNI (1976) Chronology of mesozoic volcanics of India. Proc Ind Acad Sci 84:157–179

    Google Scholar 

  • Alexander PO, (1981) Age and duration of Deccan volcanism: K-Ar evidence. In: Sukeshwala RN, Subbarao KV (eds) Deccan volcanism and related basalt provinces in other parts of the world. Mem Geol Soc Ind, 3, pp 244–258

  • Auden JB (1949) Dykes in western India. A discussion of their relationship with Deccan Traps. Trans Nat Inst Sci India 3:123–137

    Google Scholar 

  • Bailey DK (1987) Mantle metasomatism-perspective and prospects. In: Fitton JG, Upton BGJ (eds) Alkaline Rocks Blackwell Sci Publ, pp 1–13

  • Balasubrahmanyan MN, Snelling NJ (1981) Extraneous argon in lavas and dykes of the Deccan volcanic province. Mem Geol Soc Ind 3:259–264

    Google Scholar 

  • Bose MK (1980) Alkaline magmatism in the Deccan Province. J Geol Soc Ind 21:317–329

    Google Scholar 

  • Brooks CK (1977) Example of magma mixing from the Kialineq district of east Greenland. Bull Geol Soc Denmark 26:77–83

    Google Scholar 

  • Brooks CK, Printzlau I (1978) Magma mixing in mafic alkaline volcanic rocks: evidence from relict phenocryst phases and other inclusions. J Volcanol Geotherm Res 4:315–331

    Article  Google Scholar 

  • Courtillot VE, Feraud G, Maluski H, Vandamne D, Moreau MG, Besse J (1988) Deccan flood basalts and the cretaceous-tertiary boundary. Nature 333:843–846

    Article  Google Scholar 

  • Cox KG, Hawkesworth CJ (1984) Relative contribution of crust and mantle to flood basalt magmatism. Mahabaleshwar area, Deccan Traps. Phil Trans R Soc Lond A310:627–641

    Article  Google Scholar 

  • Deans T, Sukheshwala RN, Sethna SF, Viladkar SG (1972) Metasomatic feldspar rocks (potash fenites) associated with fluorite deposits and carbonatites of Amba Dongar, Gujarat, India. Trans Inst Min Metal 81:1–9

    Google Scholar 

  • Dessai AG (1985) Ultramafic inclusions (?) in lamprophyre dykes from Murud-Janjira, Raigarh district, Maharashtra. Cur Sci 54:1235–1238

    Google Scholar 

  • Dessai AG (1987) Geochemistry and petrology of xenolith bearing lamprophyres from Murud-Janjira, Raigarh district Maharashtra. J Geol Soc Ind 30:61–71

    Google Scholar 

  • Dessai AG (1994) Magma fractionation and mixing in nephelinite plug associated with Deccan magmatism at Murud-Janjira, south of Bombay. J Geol Soc Ind 43:493–509

    Google Scholar 

  • Dessai AG (2008) Secular variations in the thermal state of the western Indian shield: inferences from xenoliths in the continental margin dyke swarm. In: Srivastava RK, Sivaji Ch, Chalapathi Rao NV (eds) Indian dykes. Narosa Publishing House, New Delhi, pp 143–158

    Google Scholar 

  • Dessai AG, Bertrand H (1995) The “Panvel Flexure” along the Western Indian continental margin: an extensional fault structure related to Deccan magmatism. Tectonophysics 241:165–178

    Article  Google Scholar 

  • Dessai AG, Vaselli O (1999) Petrology and geochemistry of xenoliths in lamprophyres from the Deccan Traps: implications for the nature of the deep crust boundary in western India. Miner Mag 63:703–721

    Google Scholar 

  • Dessai AG, Viegas AAAA (1995) Multigeneration mafic dyke swarm related to Deccan magmatism, south of Bombay: Implications on the evolution of the western continental margin. In: Devaraju TC (ed) Dyke Swarms of Peninsular India. Geol Soc Ind Mem, 33, pp 435–451

  • Dessai AG, Rock NMS, Griffin BJ, Gupta D (1990) Mineralogy and petrology of some xenolth bearing alkaline dykes associated with Deccan magmatism, south of Bombay, India. Eur J Min 2:667–685

    Google Scholar 

  • Dessai AG, Knight K, Vaselli O (1999) Thermal structure of the lithosphere beneath the Deccan Trap along the western Indian continental margin: evidence from xenolith data. J Geol Soc Ind 54:585–598

    Google Scholar 

  • Dessai AG, Marckwick A, Vaselli O, Downes H (2004) Granulite and pyroxenite xenoliths from the Deccan Trap: insight into the nature and composition of the lower lithosphere beneath cratonic India. Lithos 78:263–290

    Article  Google Scholar 

  • Dessai AG, Downes H, Lopez-Moro FJ, Lopez-Plaza M (2008) Lower crustal contamination of Deccan Traps magmas: evidence from tholeiitic dykes and granulite xenoliths from western India. Mineral Petrol 93:243–272

    Article  Google Scholar 

  • Dewey CW (1986) Stratigraphy and geochemistry of the Deccan Trap lavas, Western India, Ph. D. dissertation, University of Oxford

  • Donaldson CH, Brown RW (1977) Refractory megacrsyts and magnesium rich melt inclusions within the spinel in oceanic tholeiites: indicators of magma mixing and parental magma composition. Earth Planet Sci Lett 37:81–89

    Article  Google Scholar 

  • Downes H (1989) Example of magma mixing in undersaturated alkaline volcanics, Cantal, Massif Central, France. Miner Mag 53:43–53

    Article  Google Scholar 

  • Duncan RA, Pyle DG (1988) Rapid eruption of Deccan flood basalts, western India In: Subbarao KV (ed) Deccan Flood Basalts. Mem Geol Soc India 10:1–9

    Google Scholar 

  • Fitton JG, Upton BGJ (1987) Alkaline igneousrrocks, Spec. Publ. Geol. Soc. Lond., Blackwell Sci. Publ. London, 30, 1–568

  • Gerlach DC, Grove TL (1982) Petrology of the medicine lake highland volcanics: characterisation of end-members of magma mixing. Contrib Mineral Petr 67:417–431

    Google Scholar 

  • Gwalani LG, Avasia RK (1989) Deccan basalts and carbonatite-nephelinite volcanism, Chhota Udaipur, Gujarat state, India. 28th Int Geol Congr Abstract 1: 602–603

  • Gwalani LG, Rock NMS, Chang WJ, Fernandez S, Allegre CJ, Prinzhofer A (1993) Alkaline rocks and carbonatites of Amba Dongar and adjacent areas, Deccan igneous Province, Gujarat, India: 1 geology, petrography and petrochemistry. Mineral Petrol 47:219–253

    Article  Google Scholar 

  • Hofmann C, Feraud G, Courtillot V (2000) 39 Ar/ 40Ar dating of mineral separates and whole rocks from Western Ghats lava pile: further constraints on duration and age of the Deccan Traps. Earth Planet Sci Lett 180:13–27

    Article  Google Scholar 

  • Kaila KL, Murthy PRK, Rao VK, Kharatchko GE (1981) Crustal structure from deep seismic sounding along Koyna II (Kelsi-Loni) profile in the Deccan Trap India. Tectonophysics 73:365–384

    Article  Google Scholar 

  • Kempton CJ, Downes H, Neymark LA, Wartho JA, Zartman RE, Sharkov EV (2001) Garnet granulite xenoliths from the northern baltic shield-the under-plated lower crust of a Plaleo-proterozoic large igneous province. J Petrol 42:731–763

    Article  Google Scholar 

  • Knight KB, Baker JA, Basu AR, Dessai AG, Renne PR, Wright TE (2000) A question of timing: geochronological and isotopic evidence of the Deccan plume, India. Penrose Conference, U.K. (Abstract)

  • Lightfoot PC, Hawkesworth CJ (1988) Origin of Deccan Trap lavas: evidence from combined trace element and Sr-Nd and Pb isotope studies. Earth Planet Sci Lett 91:89–104

    Article  Google Scholar 

  • Lightfoot PC, Hawkesworth CJ, SF Sethna (1987) Petrogenesis of rhyolites and trachytes from Deccan Trap :Sr –Nd, and Pb isotopes and trace element evidence. Contrib Mineral Petr 95:44–54

    Article  Google Scholar 

  • Lightfoot PC, Hawkesworth CJ, Devey CW, Rogers NW, van Carlsteren PWC (1990) Source and differentiation of Deccan Trap lavas:Implication of geochemical and mineral chemical variations. J Petrol 31:1165–1200

    Google Scholar 

  • MacDonald R (1974) The role of fractional crystallisation in the formation of alkaline rocks. In: Sorensen H (ed) Alkaline rocks. Wiley, New York, pp 442–458

    Google Scholar 

  • Mahoney JJ (1988) Deccan Traps. In: MacDougall JD (ed) Continental flood basalts. Kluwer, Dordrecht

    Google Scholar 

  • Mahoney JJ, MacDougall JD, Lugmair GW, Murali AV, Sankar DM, Gopalan K (1982) Origin of Deccan trap flows at Mahabaleshwar inferred from Nd and Sr isotopic and chemical evidence. Earth Planet Sci Lett 60:47–60

    Article  Google Scholar 

  • Mahoney JJ, MacDougall JD, Lugmair GW, Gopalan K, Krishnamurthy P (1985) Origin of contemporaneous tholeiite and K-rich alkali lavas: a case study from the northern Deccan Plateau India. Earth Planet Sci Lett 72:39–53

    Article  Google Scholar 

  • Mahoney JJ, Duncan RA, Khan W, Gnos E, McCormick GR (2002) Cretaceous volcanic rocks of the southern Tethyan suture zone. Pakistan: implications for the Reunion hot spot and Deccan Traps. Earth Planet Sci Lett 203:295–310

    Article  Google Scholar 

  • Melluso L, Sethna SF, Antonio MD, Javer P, Bennio L (2002) Geochemistry and petrogenesis of sodic and potassic mafic alkaline rocks in the Deccan volcanic province, Mumbai Area (India). Mineral Petrol 74:323–342

    Article  Google Scholar 

  • Menzies M (1987) Alkaline rocks and their inclusions: a window on the earth’s interior, In: Fitton JG, Upton BGJ (eds) Alkaline Rocks. Blackwell Sci. Publ. pp 15–27

  • Moorbath S, Thomson RN, Oxburg ER, (eds) (1984) The relative contribution of mantle, oceanic crust and continental crust to magma genesis. The Royal Soc Lond, 342

  • Mukherjee AB, Biswas S (1988) Mantle-derived spinel lherzolite xenoliths from the Deccan Volcanic Province (India): implications for the thermal structure of the lithosphere underlying the Deccan Traps. J Volcanol Geotherm Res 35:269–276

    Article  Google Scholar 

  • Murthy NGK (1987) Mafic dyke swarms of the Indian shield. Spec Publ Geol Assoc Can 34:393–400

    Google Scholar 

  • Naqvi SM, Rogers JJW (1987) Precambrian of India. Oxford Monograph on Geology and Geophysics. Clarendon Press/ Oxford University Press, p 216

  • Paul DK, Potts PJ, Rex DC, Beckinsale RD (1977) Geochemical and petrogenetic study of the Girnar igneous complex, Deccan volcanic province. Bull Geol Soc Am 88:227–234

    Article  Google Scholar 

  • Peng ZG, Mahoney J, Hooper P, Harris C, Bean J (1994) A role for lower continental crust in flood basalt genesis? Isotopic and incompatible element study of lower six formations of the western Deccan Traps. Geochim Cosmochim Acta 58:267–288

    Article  Google Scholar 

  • Rock NMS (1987) The nature and origin of lamprophyres: an overview. Spec Publ Geol Soc Lond 30:191–226

    Article  Google Scholar 

  • Rudnick RL (1992) Xenolith-samples of the lower continental crust. In: Fountain DM, Arculus RJ, Kay RW (eds) The continental crust. Elsevier, New York, pp 269–316

    Google Scholar 

  • Subbarao KV, Hooper PR (1988) Reconnaissance map of the Deccan Basalt Group in the Western Ghats, India. In: Subbarao KV, (ed) Deccan Flood Basalts. Mem Geol Soc Ind, 10 (enclosure)

  • Sukheshwala RN, Sethna SF (1973) Oversaturated and undersaturated differentiates in the tholeiitic igneous complex of Phenai Mata, Baroda district, Gujarat state, India. Neues Jah Miner Abh 118:159–176

    Google Scholar 

  • Sun SS (1980) Lead isotopic study of young volcanic rocks from mid-oceanic ridges, oceanic islands and island arcs. Phi Trans R Soc Lond A297:409–445

    Article  Google Scholar 

  • Udas GR (1970) Economic importance of some carbonatites in India and the relation of Amba Dongar carbonatite complex to plateau basalts. Bull Volcanol 35:799–809

    Article  Google Scholar 

  • Watts AB, Cox KG (1989) The Deccan trap. An interpretation in terms of progressive lithospheric flexure in response to a migrating load. Earth Planet Sci Lett 93:85–97

    Article  Google Scholar 

  • Wright TL (1973) Magma mixing as illustrated by the 1959 eruption of Kilauea volcano, Hawaii. Bull Geol Soc Am 84:849–858

    Article  Google Scholar 

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Acknowledgements

We are thankful to L. G. Gwalani for the invitation to contribute to this volume and thereby providing an opportunity to pay respects to Keith Bell. The mineral chemistry data were provided by the late N. M. S. Rock. Comments and suggestions on the initial draft of the paper by Hilary Downes are gratefully acknowledged. Thanks are due to Goa University for the logistic support.

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Correspondence to Ashoka G. Dessai.

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Dessai, A.G., Viegas, A. Petrogenesis of alkaline rocks from Murud-Janjira, in the Deccan Traps, Western India. Miner Petrol 98, 297–311 (2010). https://doi.org/10.1007/s00710-009-0105-y

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