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Lower Palar River Sediments, Southern Peninsular, India: Geochemistry, Source-Area Weathering, Provenance and Tectonic Setting

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Journal of the Geological Society of India

Abstract

This present study describes the geochemistry of fluvial sediments of the Palar river (lower reaches), Southern Peninsular India, with an aim to evaluate their provenance, weathering and tectonic setting. The bulk sediment chemistry is influenced by grain size. The river sediments are enriched with SiO2 and depleted in Al2O3, K2O, CaO, Na2O, MgO, P2O5, MnO, Fe2O3 as compared with UCC values. Geochemical classification indicate that the sediments are mainly arkose, wacke and shale in composition. Discriminant diagrams together with immobile element ratio plots reveal that, the Palar river sediments are mostly derived from rocks formed in an active continental margin. Additionally, the rare earth element ratios as well as chondrite-normalized REE patterns with flat HREE, LREE enrichment, and negative Eu anomalies indicate felsic rock sources. The chemical indices of alteration suggest that Palar river sediments are chemically immature and have experienced low chemical weathering effects. This is further supported by the Th/U Rb/Sr ratio and A-CN-K ternary diagram, with most of the sample data points falling close to the plagioclase-smectite line. The bivariate plot of Th/Sc versus Zr/Sc suggest a moderate recycled origin of the sediments.

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References

  • Agarwal, K.K., Singh, I.B., Sharma, M., Sharma, S. and Rajagopalan, G. (2002) Extensional Tectonic activity in the Craton ward parts (peripheral bulge) of the Ganga Plain Foreland Basin, India. Internat. Jour. Earth Sci., v.91(5), pp.897–905.

    Article  Google Scholar 

  • Ahmad, I. and Chandra, R. (2013) Geochemistry of loess-paleosol sediments of Kashmir Valley, India: Provenance and weathering. Jour. Asian Earth Sci., v.66, pp.73–89.

    Article  Google Scholar 

  • Amajor, L.C. (1987) Major and trace elements geochemistry of Albin and Touronian shales from the Southern Benue trough, Nigeria. Jour. African Earth Sci., v.6, pp.633–641.

    Google Scholar 

  • Babeesh, C., Achyuthan, H., Jaiswal, M.K. and Lone, A. (2017) Late Quaternary loess-like paleosols and pedocomplexes, geochemistry, provenance and source area weathering, Manasbal, Kashmir Valley, India. Geomorphology, v.284, pp.191–205.

    Article  Google Scholar 

  • Babeesh, C., Lone, A. and Achyuthan, H. (2017) Geochemistry of Manasbal Lake Sediments, Kashmir: Weathering, Provenance and Tectonic Setting. Jour. Geol. Soc. India, v.89, pp.563–572.

    Article  Google Scholar 

  • Bhatia, M.R. (1983) Plate tectonics and geochemical composition of sandstones. Jour. Geol., v.91, pp.611–627.

    Article  Google Scholar 

  • Bhatia, M.R. (1985) Rare-Earth Elements Geochemistry of Australian Paleozoic Graywackes and Mud Rocks: Provenance and tectonic control. Sediment. Geol., v.45, pp.97–113.

    Article  Google Scholar 

  • Bhatia, M.R. (1985) Composition and classification of Paleozoic flysch mudrocks of eastern Australia: Implications in provenance and tectonic setting interpretation. Sediment. Geol., v.41, pp.249–268.

    Article  Google Scholar 

  • Bhatia, M.R. and Taylor, S.R. (1981) Trace-element geochemistry and sedimentary provinces: a study from the Tasman Geosyncline, Australia. Chemical Geol., v.33, pp.115–125.

    Article  Google Scholar 

  • Bhatia, M.R. and Crook, K.A.W. (1986) Trace element characteristics of graywackes and tectonic setting discrimination of sedimentary basins. Contrib. Mineral. Petrol., v.92, pp.181–193.

    Article  Google Scholar 

  • Carver, R.E. (1971) Procedures in sedimentary petrology, John Wiley and sons. Inc. New York, p.653.

    Google Scholar 

  • Condie, K.C., Phillip, D.N.J. and Conway, C.M. (1992) Geochemical and detrital mode evidence for two sources of Early Proterozoic sedimentary rocks from Tonto Basin Supergroup, central Arizona. Sediment. Geol., v.77, pp.51–76.

    Article  Google Scholar 

  • Cox, R. and Lowe, D. (1995) A conceptual review of regional-scale controls on the composition of clastic sediment and the co-evolution of continental blocks and their sedimentary cover. Jour. Sediment. Res., v.65, pp.1–12.

    Google Scholar 

  • Cox, R., Lower, D.R., Cullers, R.L. (1995) The influence of sediment recycling and basement composition on evolution of mud rock chemistry in the southwestern United States. Geochem. Cosmochim. Acta, v.59, pp.2919–2940.

    Article  Google Scholar 

  • Cullers, R.L. (1988) Mineralogical and chemical changes of soil and stream sediment formed by intense weathering of Danburg granite, Georgia, U.S.A. Lithos, v.21, pp.301–314.

    Article  Google Scholar 

  • Cullers, R.L. (1994) The controls on the major and trace element variation of shales, siltstones, and sandstones of Pennsylvanian–Permian age from uplifted continental blocks in Colorado to platform sediment in Kansas, USA. Geochim. Cosmochim. Acta, v.58, pp.4955–4972.

    Article  Google Scholar 

  • Cullers, R.L. (2000) The Geochemistry of shales, siltstones and sandstones of Pennsylvanian–Permian age, Colorado, USA: Implications for provenance and metamorphic studies. Lithos, v.51, pp.181–203.

    Article  Google Scholar 

  • Cullers, R.L. and Graf, J. (1983) Rare earth elements in igneous rocks of the continental crust: intermediate and silicic rocks, ore petrogenesis. In: Henderson, P. (Ed.), Rare-Earth Geochemistry Elsevier, Amsterdam, pp.275–312

    Google Scholar 

  • Cullers, R.L. and Podkovyrov, V.N. (2000) Geochemistry of the Mesoproterozoic Lakhanda shales in southeastern Yakutia, Russia: Implications for mineralogical and provenance control, and recycling. Precambrian Res., v.104, pp.77–93.

    Article  Google Scholar 

  • Cullers, R.L., Basu, A. and Suttner, L.J. (1988) Geochemical signature of provenance in sand-size material in soils and stream sediments near the Tobacco Root batholith, Montana, USA. Chemical Geol., v.70, pp.335–348.

    Article  Google Scholar 

  • Das, B.K. and Haake, B. (2003) Geochemistry of Rewalsar Lake sediments, Lesser Himalaya, India: implications for source-area weathering, provenance and tectonic setting. Geoscience Jour., v.7, pp.299–312.

    Article  Google Scholar 

  • Derry, L.A. and France-Lanord, C. (1996) Neogene Himalayan weathering history and river 87Sr/86Sr: impact on marine Sr record. Earth Planet. Sci. Lett., v.142, pp.59–74.

    Article  Google Scholar 

  • Drever, J.I. and Zobrist, J. (1992) Chemical weathering of silicate rocks as a function of elevation in the southern Swiss Alps. Geochim. Cosmochim. Acta, v.56, pp.3209–3216.

    Article  Google Scholar 

  • Dupré, B., Dessert, C., Oliva, P., Goddéris, Y., Viers, J., François, L., Millot, R. and Gaillardet, J. (2003) Rivers, chemical weathering and Earth’s climate. Comptes Rendus Geosci., v.335, pp.1141–1160.

    Article  Google Scholar 

  • Edmond, J.M. (1992) 0 Himalayan tectonics, weathering processes, and the strontium isotope record in marine limestones. Science, v.258, pp.1594–1597.

    Article  Google Scholar 

  • Fedo, C.M., Eriksson, K.A. and Krogstad, E.J. (1996) Geochemistry of shales from the Archean (~3.0 Ga) Buhwa Greenstone Belt, Zimbabwe: implications for provenance and source-area weathering. Geochim. Cosmochim. Acta, v.60, pp.1751–1763.

    Article  Google Scholar 

  • Fedo, C.M., Nesbitt, H.W. and Young, G.M. (1995) Unraveling the effects of potassium metasomatism in sedimentary rocks and paleosols, with implications for paleoweathering conditions and provenance. Geology, v.23, pp.921–924.

    Article  Google Scholar 

  • Feng, R. and Kerrich, R. (1990) Geochemistry of fine-grained clastic sediments in the Archean Abitibi greenstone belt, Canada: Implications for provenance and tectonic setting. Geochim. Cosmochim. Acta, v.54, pp.1061–1081.

    Article  Google Scholar 

  • Galy, A. and France-Lanord, C. (2001) Higher erosion rates in the Himalaya: geochemical constraints on riverine fluxes. Geology, v.29, pp.23–26.

    Article  Google Scholar 

  • Garver, J.I. and Scott, T.J. (1995) Trace elements in shale as indicators of crustal provenance and terrain accretion in south Canadian Cordillera. Geol. Soc. Amer. Bull., v.107, pp.440–453.

    Article  Google Scholar 

  • Gromet, L.P., Dymek, R.F., Haskin, L.A. and Korotev, R.L. (1984) The North American shale composite: Its compilation and major and trace element characteristics. Geochim. Cosmochim. Acta, v.48, pp.2469–2482.

    Article  Google Scholar 

  • Harnois, L. (1988) The CIW index: A new chemical index of weathering. Sediment. Geol., v.55, pp.319–322.

    Article  Google Scholar 

  • Hayashi, K.I., Fujisawa, H., Holland, H.D. and Ohmoto, H. (1997) Geochemistry of 1.9 Ga sedimentary rocks from northeastern Labrador, Canada. Geochim. Cosmochim. Acta, v.61, pp. 4115–4137.

    Article  Google Scholar 

  • Herron, M.M. (1986) Geochemical classification of terrigeneous sands and shales from core or log data. Jour. Sediment. Petrol., v.58, pp.820–829.

    Google Scholar 

  • Hofer, G., Wagreich, M. and Neuhuber, S. (2013) Geochemistry of fine-grained sediments of the upper Cretaceous to Paleogene Gosau Group (Austria, Slovakia): Implications for paleoenvironmental and provenance studies. Geoscience Frontiers, v.4, pp.449–468.

    Article  Google Scholar 

  • Holail, H.M. and Moghazi, A.K.M. (1998) Provenance, tectonic setting and geochemistry of greywackes and siltstones of the Late Precambrian Hammamat Group, Egypt. Sediment. Geol., v.116, pp.227–250.

    Article  Google Scholar 

  • Rahman, M.J.J. and Suzuki, S. (2007) Geochemistry of sandstones from the Miocene Surma Group, Bengal Basin,Bangladesh: Implications for Provenance, tectonic setting and weathering. Geochemical Jour., v.41, pp.415–428.

    Article  Google Scholar 

  • Raith, M., Raase, P., Ackermand, D. and LAL, R.K. (1983) Metamorphic conditions in the charnockite–khondalite zone of south India: geothermobarometry on garnet–pyroxene–plagioclase rocks. In: Naqvi, S.M., and Rogers, J.J., (Eds.), Precambrian of South India. Mem. Geol. Soc. India, no.4, pp.438

    Google Scholar 

  • Mahjoor, A.S., Karimi, M. and Rastegarlari, A. (2009) Mineralogical and geochemical characteristics of clay deposits (Central Iran) and their applications. Jour. Appld. Sci., v.9, pp.601–614.

    Article  Google Scholar 

  • Maynard, J.B., Valloni, R. and Yu, H.S. (1982) Composition of modern deepsea sands from arc-related basins. Trench-Forearc Geology: Sedimentation and Tectonics on Modern and Ancient Active Plate Margins. Legget, J.K., (Ed.), Geol. Soc. Amer. Spec. Paper, v.284, pp.21–40.

    Google Scholar 

  • McLennan, S.M. (1984) Petrological characteristics of Archean greywackes. Jour. Sediment. Petrol., v.54, pp.889–898.

    Google Scholar 

  • McLennan, S.M. (1989) Rare earth elements in sedimentary rocks: Influence of provenance and sedimentary processes. In: Lipin, B.R., Mackay, G.A. (Eds.), Geochemistry and Mineralogy of Rare Earth Elements. Mineral. Soc. Amer., v.21, pp.169–200.

    Google Scholar 

  • McLennan, S.M. (1993) Weathering and global denudation. Jour. Geol., v.101,pp.295–303.

    Article  Google Scholar 

  • McLennan, S.M. and Taylor, J.R. (1983) Continental freeboard, sedimentation rates and growth of continental crust. Nature, v.306, pp.169–172.

    Article  Google Scholar 

  • McLennan, S.M. and Taylor, J.R. (1991) Sedimentary rocks and crustal evolution: Tectonic setting and secular trends. Jour. Geol., v.99, pp.1–21.

    Article  Google Scholar 

  • McLennan, S.M., Taylor, S.R. and Eriksson, K.A. (1983) Geochemistry of Archaean shales from Pilbara Supergroup, Western Australia. Geochim. Cosmochim. Acta, v.47, pp.1211–1222.

    Article  Google Scholar 

  • McLennan, S.M., Hemming, S., McDaniel, D.K. and Hanson, G.M. (1993) Geochemical approaches to sedimentation, provenance, and tectonics. In: Johnsson, M.J., Basu, A. (Eds.), Processes Controlling the Composition of Clastic Sediments. Geol. Soc. Amer., Spec. Paper, v.284, pp.21–40.

    Article  Google Scholar 

  • Miall, A.D. (1978) Lithofacies types and vertical profile models in braided river deposits: a summary. In: Miall, A.D. (Ed.), Fluvial Sedimentology. Canadian Society of Petroleum Geologists Memoirs, v.5, pp. 597–604.

    Google Scholar 

  • Miall, A.D. (1996) The Geology of Fluvial Deposits. Sedimentary Unit, Basin Analysis, and Petroleum Geology, Springer-Verlag, Berlin, pp.582.

    Google Scholar 

  • Moosavirad, S.M., Janardhana, M.R., Sethumadhav, M.S., Moghadam, M.R. and Shankara, M. (2010) Geochemistry of lower Jurassic shales of the Shemshak Formation, Kerman Province, Central Iran: Provenance, source weathering and tectonic setting. Chemie der Erde-Geochemistry, v.71, pp.279–288.

    Article  Google Scholar 

  • Nesbitt, H.W., Young, G.M., 1982. Early Proterozoic climates and plate motions inferred from major element chemistry of lutites. Nature, v.199, pp.715–717.

    Article  Google Scholar 

  • Nesbitt, H.W. and Young, G.M. (1984) Prediction of some weathering trends of plutonic and volcanic rocks based on thermodynamic and kinetic considerations. Geochim. Cosmochim. Acta, v.48, pp.1523–1534.

    Article  Google Scholar 

  • Nesbitt, H.W. and Young, G.M. (1989) Formation and diagenesis of weathering profiles. Jour. Geol., v.97, pp.129–147.

    Article  Google Scholar 

  • Nesbitt, H.W. and Young, G.M. (1996) Petrogenesis of sediments in the absence of chemical weathering: effects of abrasion and sorting on bulk composition and mineralogy. Sediment., v.43, pp.341–358.

    Article  Google Scholar 

  • Resmi, M.R., Achyuthan, H. and Jaiswal, M.K. (2016) Middle to late Holocene paleochannels and migration of the Palar River, Tamil Nadu: Implications of neotectonic activity. Quaternary Internat., DOI: 10.1016/j.quaint.2016.05.002

    Google Scholar 

  • Roser, B.P. and Korsch, R.J. (1986) Determination of tectonic setting of sandstone-mudstone suites using SiO2 content and K2O/Na2O ratio. Jour. Geol., v.94, pp.635–650.

    Article  Google Scholar 

  • Roser, B.P. and Korsch, R.J. (1988) Provenance signatures of sandstonemudstone suites determined using discriminant function analysis of majorelement data. Chemical Geol., v.67, pp.119–139.

    Article  Google Scholar 

  • Sarin, M.M., Krishnaswami, S., Dilli, K., Somayajulu, B.L.K. and Moore, W.S. (1989) Major ion chemistry of the Ganga–Brahmaputra river system: weathering processes and fluxes to theBay of Bengal. Geochim. Cosmochim. Acta, v.58, pp.4809–4814.

    Google Scholar 

  • Sharma, A. and Rajamani, V. (2000) Weathering of gneissic rocks in the upper reaches of the Cauvery River, south India: implications to neotectonic of the region. Chemical Geol., v.166, pp.203–223.

    Article  Google Scholar 

  • Shepard, F. (1954) Nomenclature based on sand-silt-clay ratios. Jour. Sediment. Petrol., v.24, pp.151–158.

    Google Scholar 

  • Singh, I. B., Rajagopalan, G., Agarwal, K. K., Srivastava, P. Sharma, M. and Sharma, S. (1997). Evidence of Middle to Late Holocene Neotectonic Activity in Ganga Plain. Curr. Sci., v.12, pp.1114–1117.

    Google Scholar 

  • Singh, M., Sharma, M. and Tobschall, H.J. (2005) Weathering of the Ganga alluvial plain,northern India: implications from fluvial geochemistry of the Gomati River. Appld. Geochem., v.20, pp.1–21.

    Article  Google Scholar 

  • Singh, P. (2009) Major, trace and REE geochemistry of the Ganga River sediments: influence of provenance and sedimentary processes. Chemical Geol., v.266, pp.251–264.

    Article  Google Scholar 

  • Singh, P. (2010) Geochemistry and provenance of stream sediments of the Ganga River and its major tributaries in the Himalayan region, India. Chemical Geol., v.269, pp.220–236.

    Article  Google Scholar 

  • Singh, P. and Rajamani, V. (2001) Geochemistry of the floodplain sediments of the Kaveri River, southern India. Jour. Sediment. Res., v.71(1), pp.50–60.

    Article  Google Scholar 

  • Singh, P. and Rajamani, V. (2001) REE geochemistry of recent clastic sediments from the Kaveri floodplains, Southern India: implication to source area weathering and sedimentary processes. Geochim. Cosmochim. Acta, v.65, pp.3093–3108.

    Article  Google Scholar 

  • Sprangers, J.T.C.M. and Balasubramaniam, K. (1978) A phytosocoilogical analysis of the tropical dry semi-evergreen forest of Marakkanam, South-Eastern India. Tropical Ecology, v.19(1), pp.70–92.

    Google Scholar 

  • Subrahmanya, K.R. (1996) Active intraplate deformation in south India. Tectonophysics, v.262, pp.231–241.

    Article  Google Scholar 

  • Sun, Q. Wang, S. Zhou. (2010) Sediment geochemistry of Lake Daihai, northcentral China: implications for catchment weathering and climate change during the Holocene. Jour. Paleolimnol., v.43, pp.75–87.

    Article  Google Scholar 

  • Taylor, S.R. and McLennan, S.M. (1985) The Continental Crust: Its composition and Evolution. Blackwell, Oxford, 312p.

    Google Scholar 

  • Tripathi, J.K. and Rajamani, V. (2003) Geochemistry of Delhi quartzites: implications for the provenance and source area weathering. Jour. Geol. Soc. India, v.62, pp.215–226.

    Google Scholar 

  • Wronkiewicz, D.J. and Condie K.C. (1987) Geochemistry of Archean Shales from the Witwatersrand super group, South Africa: source area weathering and provenance. Geochim. Cosmochim. Acta, v.51, pp.2401–2416.

    Article  Google Scholar 

  • Wronkiewicz, D.J. and Condie K.C. (1989) Geochemistry and provenance of sediments from the Pongola Supergroup, South Africa: evidence for a 3.0 Ga old continental craton. Geochim. Cosmochim. Acta, v.53, pp.1537–1549.

    Article  Google Scholar 

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Resmi, M.R., Achyuthan, H. Lower Palar River Sediments, Southern Peninsular, India: Geochemistry, Source-Area Weathering, Provenance and Tectonic Setting. J Geol Soc India 92, 83–91 (2018). https://doi.org/10.1007/s12594-018-0956-0

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